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      <title><![CDATA[Zehao Yu, Meilin Li, Yu Yang, Peng Yu, Ady Suwardi, Lifa Zhang, and Yunshan Zhao. Multifunctional Native Defects Boosting the Thermoelectric Transport in Few-Layer PdPS. Adv. Electron. Mater. 11, 2400634 (2025)]]></title>
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      <title><![CDATA[Zehao Yu, Meilin Li, Yu Yang, Peng Yu, Ady Suwardi, Lifa Zhang, and Yunshan Zhao. Multifunctional Native Defects Boosting the Thermoelectric Transport in Few-Layer PdPS. Adv. Electron. Mater. 11, 2400634 (2025)]]></title>
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      <pubDate>Wed, 10 Dec 2025 12:36:46 +0000</pubDate>
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      <title><![CDATA[Jiaqiu Xie, Zehao Yu, Yuanchen Sun, Qikang Gan, Chenhan Liu, Lei Wang, Lifa Zhang, and Yunshan Zhao. Interfacial Thermal Transport and Energy Dissipation in Multilayer  PdSe2 ​    Field Effect Transistors. Adv. Mater. 37, 2503264 (2025)]]></title>
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      <pubDate>Wed, 10 Dec 2025 12:36:03 +0000</pubDate>
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      <title><![CDATA[Jiaqiu Xie, Zehao Yu, Yuanchen Sun, Qikang Gan, Chenhan Liu, Lei Wang, Lifa Zhang, and Yunshan Zhao. Interfacial Thermal Transport and Energy Dissipation in Multilayer  PdSe2 ​    Field Effect Transistors. Adv. Mater. 37, 2503264 (2025)]]></title>
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      <pubDate>Wed, 10 Dec 2025 12:34:55 +0000</pubDate>
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      <title><![CDATA[Yingqi Wang, Yu Yang, Zhuo Ju, Zehao Yu, Hui Guo, Meilin Li, Dengke Ma, Lifa Zhang, and Yunshan Zhao. Improving the interfacial thermal conductance between Cr–Ni alloy and dielectric by a metal interlayer. Appl. Phys. Lett. 127, 072203 (2025)]]></title>
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      <pubDate>Wed, 10 Dec 2025 12:33:23 +0000</pubDate>
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      <title><![CDATA[Yingqi Wang, Yu Yang, Zhuo Ju, Zehao Yu, Hui Guo, Meilin Li, Dengke Ma, Lifa Zhang, and Yunshan Zhao. Improving the interfacial thermal conductance between Cr–Ni alloy and dielectric by a metal interlayer. Appl. Phys. Lett. 127, 072203 (2025)]]></title>
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      <pubDate>Wed, 10 Dec 2025 12:31:46 +0000</pubDate>
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      <title><![CDATA[Hui Guo, Yu Yang, Zehao Yu, Meilin Li, Yingqi Wang, Xiaoxiang Xi, Jing Wu, Chenhan Liu, Lifa Zhang, and Yunshan Zhao. Tuning Interfacial Thermal Transport through Phase Engineering in 2D Ferroelectrics. Small, 21, e202506551 (2025)]]></title>
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      <pubDate>Wed, 10 Dec 2025 12:30:53 +0000</pubDate>
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      <title><![CDATA[Hui Guo, Yu Yang, Zehao Yu, Meilin Li, Yingqi Wang, Xiaoxiang Xi, Jing Wu, Chenhan Liu, Lifa Zhang, and Yunshan Zhao. Tuning Interfacial Thermal Transport through Phase Engineering in 2D Ferroelectrics. Small, 21, e202506551 (2025)]]></title>
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      <pubDate>Wed, 10 Dec 2025 12:28:33 +0000</pubDate>
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      <title><![CDATA[Da Sun, Meilin Li, Junjie Zhai, Jun Zhou, and Yunshan Zhao. Abnormal length-dependent thermal transport in silicon nitride nanoribbons by surface phonon polaritons. J. Appl. Phys. 138, 174308 (2025)]]></title>
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      <pubDate>Wed, 10 Dec 2025 12:27:26 +0000</pubDate>
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      <title><![CDATA[Da Sun, Meilin Li, Junjie Zhai, Jun Zhou, and Yunshan Zhao. Abnormal length-dependent thermal transport in silicon nitride nanoribbons by surface phonon polaritons. J. Appl. Phys. 138, 174308 (2025)]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://watermark02.silverchair.com/174308_1_5.0288735.pdf?token=AQECAHi208BE49Ooan9kkhW_Ercy7Dm3ZL_9Cf3qfKAc485ysgAABbYwggWyBgkqhkiG9w0BBwagggWjMIIFnwIBADCCBZgGCSqGSIb3DQEHATAeBglghkgBZQMEAS4wEQQMCuN</link>
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      <pubDate>Wed, 10 Dec 2025 12:26:20 +0000</pubDate>
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      <title><![CDATA[Dominik M. Juraschek, R. Matthias Geilhufe, Hanyu Zhu,et al. Chiral phonons. Nat.Phys, 21, 1532–1540 (2025)]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://www.nature.com/articles/s41567-025-03001-9</link>
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      <pubDate>Wed, 10 Dec 2025 12:24:31 +0000</pubDate>
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      <title><![CDATA[Dominik M. Juraschek, R. Matthias Geilhufe, Hanyu Zhu,et al. Chiral phonons. Nat.Phys, 21, 1532–1540 (2025)]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://www.nature.com/articles/s41567-025-03001-9</link>
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      <category>2025</category>
      <author><![CDATA[]]></author>
      <pubDate>Wed, 10 Dec 2025 12:23:12 +0000</pubDate>
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      <title><![CDATA[Wei Tang, Tingting Wang, Junjian Mi, Jun Zhou, Lifa Zhang, and Linjun Li. Chiral phonons and the magneto-optical Raman effect in kagome lattice semiconductor. Nb3Cl8. Opt. Mater. Express 15, 2119-2131 (2025).]]></title>
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      <link>https://opg.optica.org/directpdfaccess/59ee3663-e76c-46a4-b3eb9b4244f75da0_575411/ome-15-9-2119.pdf?da=1&amp;id=575411&amp;seq=0&amp;mobile=no</link>
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      <pubDate>Wed, 10 Dec 2025 12:18:21 +0000</pubDate>
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      <title><![CDATA[Wei Tang, Tingting Wang, Junjian Mi, Jun Zhou, Lifa Zhang, and Linjun Li. Chiral phonons and the magneto-optical Raman effect in kagome lattice semiconductor Nb3Cl8.Optical Materials Express, 15, 2119 (2025)]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://opg.optica.org/directpdfaccess/59ee3663-e76c-46a4-b3eb9b4244f75da0_575411/ome-15-9-2119.pdf?da=1&amp;id=575411&amp;seq=0&amp;mobile=no</link>
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      <pubDate>Wed, 10 Dec 2025 12:15:31 +0000</pubDate>
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      <title><![CDATA[Wei Tang, Tingting Wang, Junjian Mi, Jun Zhou, Lifa Zhang, and Linjun Li. Chiral phonons and the magneto-optical Raman effect in kagome lattice semiconductor. Nb3Cl8. Opt. Mater. Express 15, 2119-2131 (2025).]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://opg.optica.org/directpdfaccess/59ee3663-e76c-46a4-b3eb9b4244f75da0_575411/ome-15-9-2119.pdf?da=1&amp;id=575411&amp;seq=0&amp;mobile=no</link>
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      <pubDate>Wed, 10 Dec 2025 12:15:31 +0000</pubDate>
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      <title><![CDATA[Junjian Mi, Tingting Wang, Wei Tang, Xinyi Fan, Jun Zhou, Lifa Zhang, Linjun Li, and Zhuan Xu. Chiral phonons and giant magneto-optical Raman effect in chiral antiferromagnetic CoNb3S6. Appl. Phys. Lett. 127, 221101 (2025)]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://watermark02.silverchair.com/221101_1_5.0299889.pdf?token=AQECAHi208BE49Ooan9kkhW_Ercy7Dm3ZL_9Cf3qfKAc485ysgAABbYwggWyBgkqhkiG9w0BBwagggWjMIIFnwIBADCCBZgGCSqGSIb3DQEHATAeBglghkgBZQMEAS4wEQQMYx6</link>
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      <pubDate>Wed, 10 Dec 2025 12:12:15 +0000</pubDate>
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      <title><![CDATA[Junjian Mi, Tingting Wang, Wei Tang, Xinyi Fan, Jun Zhou, Lifa Zhang, Linjun Li, and Zhuan Xu. Chiral phonons and giant magneto-optical Raman effect in chiral antiferromagnetic CoNb3S6. Appl. Phys. Lett. 127, 221101 (2025)]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://watermark02.silverchair.com/221101_1_5.0299889.pdf?token=AQECAHi208BE49Ooan9kkhW_Ercy7Dm3ZL_9Cf3qfKAc485ysgAABbYwggWyBgkqhkiG9w0BBwagggWjMIIFnwIBADCCBZgGCSqGSIb3DQEHATAeBglghkgBZQMEAS4wEQQMYx6</link>
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      <pubDate>Wed, 10 Dec 2025 12:09:14 +0000</pubDate>
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      <title><![CDATA[Hao Chen, Hanyu Wang, Tingting Wang, Yongsen Tang, Haoshu Li, Xiaohong Yan, and Lifa Zhang. Ultrafast switching of photoinduced phonon chirality in the antiferrochiral BPO4 crystal. Phys. Rev. B 112, 174314 (2025).]]></title>
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      <link>https://arxiv.org/pdf/2506.03742</link>
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      <category>2025</category>
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      <pubDate>Wed, 10 Dec 2025 12:07:21 +0000</pubDate>
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      <title><![CDATA[Hao Chen, Hanyu Wang, Tingting Wang, Yongsen Tang, Haoshu Li, Xiaohong Yan, and Lifa Zhang. Ultrafast switching of photoinduced phonon chirality in the antiferrochiral BPO4 crystal. Phys. Rev. B 112, 174314 (2025).]]></title>
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      <link>https://arxiv.org/pdf/2506.03742</link>
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      <pubDate>Wed, 10 Dec 2025 12:05:37 +0000</pubDate>
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      <title><![CDATA[Xiaozhe Li, Yang Long, Yan Zhou, Hao Chen, and Lifa Zhang. Manipulating topological chiral phonons with a magnetic field. Phys. Rev. B 112, 064302 (2025).]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://journals.aps.org/prb/pdf/10.1103/j7xq-djbg</link>
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      <pubDate>Wed, 10 Dec 2025 12:03:04 +0000</pubDate>
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      <title><![CDATA[Xiaozhe Li, Yang Long, Yan Zhou, Hao Chen, and Lifa Zhang. Manipulating topological chiral phonons with a magnetic field. Phys. Rev. B 112, 064302 (2025).]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://journals.aps.org/prb/pdf/10.1103/j7xq-djbg</link>
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      <pubDate>Wed, 10 Dec 2025 12:02:44 +0000</pubDate>
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      <title><![CDATA[Hong Sun, Jiaqi Chen, Qingxuan Wang, Xiaoliang Zeng, Jun Zhou, and Lifa Zhang. Phonon Angular Momentum Generation in Single-Stranded Helix Structure. Chinese Phys. Lett. 42, 090711 (2025)]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://iopscience.iop.org/article/10.1088/0256-307X/42/9/090711/pdf</link>
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      <pubDate>Wed, 10 Dec 2025 12:00:26 +0000</pubDate>
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      <title><![CDATA[Hong Sun, Jiaqi Chen, Qingxuan Wang, Xiaoliang Zeng, Jun Zhou, and Lifa Zhang. Phonon Angular Momentum Generation in Single-Stranded Helix Structure. Chinese Phys. Lett. 42, 090711 (2025)]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://iopscience.iop.org/article/10.1088/0256-307X/42/9/090711/pdf</link>
      <guid>https://iopscience.iop.org/article/10.1088/0256-307X/42/9/090711/pdf</guid>
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      <pubDate>Wed, 10 Dec 2025 11:59:57 +0000</pubDate>
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      <title><![CDATA[Lei Zhao, Yu Yang, Yan Zhou, and Lifa Zhang. Negative Thermal Transport and Giant Thermal Rectification Unveiled in a Periodic-Oscillating Temperature System. Chinese Phys. Lett. 42, 080702 (2025)]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://iopscience.iop.org/article/10.1088/0256-307X/42/8/080702/pdf</link>
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      <pubDate>Wed, 10 Dec 2025 11:55:26 +0000</pubDate>
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      <title><![CDATA[Lei Zhao, Yu Yang, Yan Zhou, and Lifa Zhang. Negative Thermal Transport and Giant Thermal Rectification Unveiled in a Periodic-Oscillating Temperature System. Chinese Phys. Lett. 42, 080702 (2025)]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://iopscience.iop.org/article/10.1088/0256-307X/42/8/080702/pdf</link>
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      <pubDate>Wed, 10 Dec 2025 11:47:22 +0000</pubDate>
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      <title><![CDATA[Tingting Wang, Xiaozhe Li, Zhuo Ju, Gang Zhang, Dengke Ma, Wu Li, Lifa Zhang. Atomic Mass Engineering of Ultra-High Thermal Conductivity in Large Bandgap Materials: A Case Study with Boron ArsenideJ. Chinese Phys. Lett. 42 070802（2025）]]></title>
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      <link>https://doi.org/10.1088/0256-307X/42/7/070802</link>
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      <pubDate>Mon, 14 Jul 2025 10:52:30 +0000</pubDate>
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      <title><![CDATA[Tingting Wang, Xiaozhe Li, Zhuo Ju, Gang Zhang, Dengke Ma, Wu Li, Lifa Zhang. Atomic Mass Engineering of Ultra-High Thermal Conductivity in Large Bandgap Materials: A Case Study with Boron ArsenideJ. Chinese Phys. Lett. 42 070802（2025）]]></title>
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      <link>https://doi.org/10.1088/0256-307X/42/7/070802</link>
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      <pubDate>Mon, 14 Jul 2025 10:51:39 +0000</pubDate>
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      <title><![CDATA[Yu Yang,  Yan Zhou,  Ziming Tang,  Yulu Liu,  Weimin Quan,  Jun Zhou,  Xiaokang Li,  Xiaoxiang Xi,  Qihua Gong,  Lifa Zhang,  Yunshan Zhao. Unusual Thermal Transport in Few-Layer Van der Waals Antiferromagnet CrOCl. Adv. Sci. 2025, 12, 2502440.]]></title>
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      <link>https://doi.org/10.1002/advs.202502440</link>
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      <pubDate>Mon, 14 Jul 2025 10:28:38 +0000</pubDate>
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      <title><![CDATA[Yu Yang,  Yan Zhou,  Ziming Tang,  Yulu Liu,  Weimin Quan,  Jun Zhou,  Xiaokang Li,  Xiaoxiang Xi,  Qihua Gong,  Lifa Zhang,  Yunshan Zhao. Unusual Thermal Transport in Few-Layer Van der Waals Antiferromagnet CrOCl. Adv. Sci. 2025, 12, 2502440.]]></title>
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      <link>https://doi.org/10.1002/advs.202502440</link>
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      <pubDate>Mon, 14 Jul 2025 10:21:38 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[Zhuo Ju, Dengke Ma, Zheng Chang. Strain effect on the particlelike and wavelike mutual coherence contributions to the thermal conductivity of AgTlI2. Phys. Rev. B 111, 134302 (2025)]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://doi.org/10.1103/PhysRevB.111.134302</link>
      <guid>https://doi.org/10.1103/PhysRevB.111.134302</guid>
      <category>2025</category>
      <author><![CDATA[]]></author>
      <pubDate>Fri, 11 Apr 2025 02:51:45 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[Jincheng Yue, Rongkun Chen, Dengke Ma, Shiqian Hu. Nanoparticle-assisted phonon transport modulation in Si/Ge heterostructures using neuroevolution potential machine learning models. Chinese Phys. Lett. 42, 036301 (2025)]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://cpl.iphy.ac.cn/article/doi/10.1088/0256-307X/42/3/036301</link>
      <guid>https://cpl.iphy.ac.cn/article/doi/10.1088/0256-307X/42/3/036301</guid>
      <category>2025</category>
      <author><![CDATA[]]></author>
      <pubDate>Fri, 11 Apr 2025 02:50:29 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[Zhuo Ju, Dengke Ma, Zheng Chang. Strain effect on the particlelike and wavelike mutual coherence contributions to the thermal conductivity of AgTlI2. Phys. Rev. B 111, 134302 (2025)]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://doi.org/10.1103/PhysRevB.111.134302</link>
      <guid>https://doi.org/10.1103/PhysRevB.111.134302</guid>
      <category>2025</category>
      <author><![CDATA[]]></author>
      <pubDate>Fri, 11 Apr 2025 02:43:43 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[Jincheng Yue, Rongkun Chen, Dengke Ma, Shiqian Hu. Nanoparticle-assisted phonon transport modulation in Si/Ge heterostructures using neuroevolution potential machine learning models. Chinese Phys. Lett. 42, 036301 (2025)]]></title>
      <description><![CDATA[ &amp;nbsp;Jincheng Yue, Rongkun Chen, Dengke Ma, Shiqian Hu. Nanoparticle-assisted phonon transport modulation in Si/Ge heterostructures using neuroevolution potential machine learning models. Chin Phys. Lett. 42 036301 (2025) ]]></description>
      <link>https://cpl.iphy.ac.cn/article/doi/10.1088/0256-307X/42/3/036301</link>
      <guid>https://cpl.iphy.ac.cn/article/doi/10.1088/0256-307X/42/3/036301</guid>
      <category>2025</category>
      <author><![CDATA[]]></author>
      <pubDate>Fri, 11 Apr 2025 02:36:41 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[Yu Yang, Yan Zhou, Gang Zhang, Fanyu Liu, Bo Li, Yunshan Zhao, and Lifa Zhang. Thickness-dependent heat dissipation in CrOCl heat-escaping channel. Adv. Funct. Mater. 35, 2412469 (2025)]]></title>
      <description><![CDATA[ Thickness-Dependent Heat Dissipation in CrOCl Heat-Escaping Channel ]]></description>
      <link>https://advanced.onlinelibrary.wiley.com/doi/full/10.1002/adfm.202412469</link>
      <guid>https://advanced.onlinelibrary.wiley.com/doi/full/10.1002/adfm.202412469</guid>
      <category>2025</category>
      <author><![CDATA[]]></author>
      <pubDate>Thu, 13 Mar 2025 05:28:09 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[Yu Yang, Yan Zhou, Gang Zhang, Fanyu Liu, Bo Li, Yunshan Zhao, and Lifa Zhang. Thickness-dependent heat dissipation in CrOCl heat-escaping channel. Adv. Funct. Mater. 35, 2412469 (2025)]]></title>
      <description><![CDATA[ Thickness-Dependent Heat Dissipation in CrOCl Heat-Escaping Channel ]]></description>
      <link>https://advanced.onlinelibrary.wiley.com/doi/full/10.1002/adfm.202412469</link>
      <guid>https://advanced.onlinelibrary.wiley.com/doi/full/10.1002/adfm.202412469</guid>
      <category>2025</category>
      <author><![CDATA[]]></author>
      <pubDate>Thu, 13 Mar 2025 05:28:09 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[Shuang Tian, Tingting Wang, Hao Chen, Dengke Ma, and Lifa Zhang. Phonon coherent transport leads to an anomalous boundary effect on the thermal conductivity of a rough graphene nanoribbon. Phys. Rev. Applied 21, 064005 (2024)]]></title>
      <description><![CDATA[ Phonon coherent transport leads to an anomalous boundary effect on the thermal conductivity of a rough graphene nanoribbon ]]></description>
      <link>https://link.aps.org/doi/10.1103/PhysRevApplied.21.064005</link>
      <guid>https://link.aps.org/doi/10.1103/PhysRevApplied.21.064005</guid>
      <category>2024</category>
      <author><![CDATA[]]></author>
      <pubDate>Wed, 17 Jul 2024 04:33:28 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[Shuang Tian, Tingting Wang, Hao Chen, Dengke Ma, and Lifa Zhang. Phonon coherent transport leads to an anomalous boundary effect on the thermal conductivity of a rough graphene nanoribbon. Phys. Rev. Applied 21, 064005 (2024)]]></title>
      <description><![CDATA[ Phonon coherent transport leads to an anomalous boundary effect on the thermal conductivity of a rough graphene nanoribbon ]]></description>
      <link>https://link.aps.org/doi/10.1103/PhysRevApplied.21.064005</link>
      <guid>https://link.aps.org/doi/10.1103/PhysRevApplied.21.064005</guid>
      <category>2024</category>
      <author><![CDATA[]]></author>
      <pubDate>Wed, 17 Jul 2024 04:33:28 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[Xiaozhe Li, Yang Long, Tingting Wang, Yan Zhou, and Lifa Zhang.Utilizing topological invariants for encoding and manipulating chiral phonon devices.Appl. Phys. Lett. 124, 252201 (2024)]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://pubs.aip.org/aip/apl/article/124/25/252201/3298452/Utilizing-topological-invariants-for-encoding-and</link>
      <guid>https://pubs.aip.org/aip/apl/article/124/25/252201/3298452/Utilizing-topological-invariants-for-encoding-and</guid>
      <category>2024</category>
      <author><![CDATA[]]></author>
      <pubDate>Sat, 06 Jul 2024 14:51:52 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[Xiaozhe Li, Yang Long, Tingting Wang, Yan Zhou, and Lifa Zhang.Utilizing topological invariants for encoding and manipulating chiral phonon devices.Appl. Phys. Lett. 124, 252201 (2024)]]></title>
      <description><![CDATA[  ]]></description>
      <link>https://pubs.aip.org/aip/apl/article/124/25/252201/3298452/Utilizing-topological-invariants-for-encoding-and</link>
      <guid>https://pubs.aip.org/aip/apl/article/124/25/252201/3298452/Utilizing-topological-invariants-for-encoding-and</guid>
      <category>2024</category>
      <author><![CDATA[]]></author>
      <pubDate>Sat, 06 Jul 2024 14:48:44 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[Yan Zhou]]></title>
      <description><![CDATA[  Yan Zhou, Associate Professor, graduated from the Department of Condensed Matter Physics at the University of Bristol in 2019 with a PhD degree. He is mainly engaged in micro and nano scale heat transport, wide band gap and low dimensional thin film semiconductor thermal conductivity and interface  ]]></description>
      <link>http://www.cqtes.cn/english/People/Faculty/2024-05-30/524.html</link>
      <guid>http://www.cqtes.cn/english/People/Faculty/2024-05-30/524.html</guid>
      <category>Faculty</category>
      <author><![CDATA[]]></author>
      <pubDate>Thu, 30 May 2024 06:23:59 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[ Yanglin Zhu]]></title>
      <description><![CDATA[  Yanglin Zhu is mainly engaged in quantum material synthesis and transport research. From 2007 to 2018, he studied in Northwest University of China, Institute of Solid State Physics of Chinese Academy of Sciences and Tulane University, earning bachelor&amp;#039;s, master&amp;#039;s and Doctor&amp;#039;s degrees. After grad ]]></description>
      <link>http://www.cqtes.cn/english/People/Faculty/2024-05-30/523.html</link>
      <guid>http://www.cqtes.cn/english/People/Faculty/2024-05-30/523.html</guid>
      <category>Faculty</category>
      <author><![CDATA[]]></author>
      <pubDate>Thu, 30 May 2024 06:22:59 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[ Kunhua Zhang]]></title>
      <description><![CDATA[  Kunhua Zhang received his bachelor&amp;#039;s degree from Northwest University in 2006 and his doctorate from the University of Chinese Academy of Sciences in 2015. From 2015 to 2020, he worked as a postdoctoral fellow and special associate researcher at the University of Science and Technology of China. S ]]></description>
      <link>http://www.cqtes.cn/english/People/Faculty/2024-05-30/522.html</link>
      <guid>http://www.cqtes.cn/english/People/Faculty/2024-05-30/522.html</guid>
      <category>Faculty</category>
      <author><![CDATA[]]></author>
      <pubDate>Thu, 30 May 2024 06:22:08 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[Huaiqiang Wang]]></title>
      <description><![CDATA[  Huaiqiang Wang graduated from the base class of the School of Physics of Nanjing University. In 2017,  obtained my doctorate degree from the National Experimental Class of the School of Physics of Nanjing University. From 2017 to 2023, I worked as a special associate researcher in the School of Phy ]]></description>
      <link>http://www.cqtes.cn/english/People/Faculty/2024-05-30/521.html</link>
      <guid>http://www.cqtes.cn/english/People/Faculty/2024-05-30/521.html</guid>
      <category>Faculty</category>
      <author><![CDATA[]]></author>
      <pubDate>Thu, 30 May 2024 06:20:27 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[ Dongbao Luo]]></title>
      <description><![CDATA[  Dongbao Luo received his PhD in condensed matter Physics from Jilin University in 2019. From 2019 to 2023, he worked as a postdoctoral researcher at RWTH Aachen University and the State University of New York at Buffalo. In April 2024, he joined the School of Physical Science and Technology of Nanj ]]></description>
      <link>http://www.cqtes.cn/english/People/Faculty/2024-05-30/520.html</link>
      <guid>http://www.cqtes.cn/english/People/Faculty/2024-05-30/520.html</guid>
      <category>Faculty</category>
      <author><![CDATA[]]></author>
      <pubDate>Thu, 30 May 2024 06:19:24 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[Chenhan Liu]]></title>
      <description><![CDATA[ Chenhan Liu, professor, doctoral supervisor, young and middle-aged leading talents of Nanjing Normal University, was selected as the &amp;quot;Blue Project&amp;quot;, &amp;quot;Vice President of Science and Technology&amp;quot; and &amp;quot;Doctor of Mass Innovation&amp;quot; in Jiangsu Province, respectively. He received his bachelor&amp;#039;s degree and do ]]></description>
      <link>http://www.cqtes.cn/english/People/Faculty/2024-05-30/519.html</link>
      <guid>http://www.cqtes.cn/english/People/Faculty/2024-05-30/519.html</guid>
      <category>Faculty</category>
      <author><![CDATA[]]></author>
      <pubDate>Thu, 30 May 2024 06:18:15 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[刘晨晗]]></title>
      <description><![CDATA[ 刘晨晗，南京师范大学教授、博导、中青年领军人才，入选江苏省&amp;amp;ldquo;青蓝工程&amp;amp;rdquo;、&amp;amp;ldquo;科技副总&amp;amp;rdquo;、&amp;amp;ldquo;双创博士&amp;amp;rdquo;等，分别于2012年和2019年在东南大学获得学士和博士学位，博士期间有两年去美国加州大学伯克利分校联合培养，于2020年加入南京师范大学。从2012年起围绕声子热输运的基础理论与主动调控开展系列深 ]]></description>
      <link>http://www.cqtes.cn/yanjiurenyuan/qingnianjiaoshi/2024-05-30/518.html</link>
      <guid>http://www.cqtes.cn/yanjiurenyuan/qingnianjiaoshi/2024-05-30/518.html</guid>
      <category>青年教师</category>
      <author><![CDATA[]]></author>
      <pubDate>Thu, 30 May 2024 06:11:20 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[罗东宝]]></title>
      <description><![CDATA[ 2019年于吉林大学凝聚态物理专业获得博士学位，2019-2023年，于亚琛工业大学和纽约州立大学布法罗分校从事博士后研究工作。2024年4月起，加入南京师范大学物理科学与技术学院，任副研究员。主要致力于高压下新型材料的理论设计工作，涵盖超硬、超导、非线性光学、光催化水分解、锂电池、热电等多种多功能材料。现已在《美国化学会志》 ]]></description>
      <link>http://www.cqtes.cn/yanjiurenyuan/qingnianjiaoshi/2024-05-30/517.html</link>
      <guid>http://www.cqtes.cn/yanjiurenyuan/qingnianjiaoshi/2024-05-30/517.html</guid>
      <category>青年教师</category>
      <author><![CDATA[]]></author>
      <pubDate>Thu, 30 May 2024 06:10:03 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[王怀强]]></title>
      <description><![CDATA[ 2012年本科毕业于南京大学物理学院基地班，2017年于南京大学物理学院国家实验班获得博士学位，2017至2023年于南京大学物理学院担任特任副研究员，2018年获批江苏省双创博士，2020年至2021年获得瑞士政府奖学金资助访问苏黎世大学物理系，2023年底加入南京师范大学物理科学与技术学院并入选校中青年领军人才青年拔尖人才项目。长期从事 ]]></description>
      <link>http://www.cqtes.cn/yanjiurenyuan/qingnianjiaoshi/2024-05-30/516.html</link>
      <guid>http://www.cqtes.cn/yanjiurenyuan/qingnianjiaoshi/2024-05-30/516.html</guid>
      <category>青年教师</category>
      <author><![CDATA[]]></author>
      <pubDate>Thu, 30 May 2024 06:08:34 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[张坤华]]></title>
      <description><![CDATA[ 副教授，2006年本科毕业于西北大学，2015年博士毕业于中国科学院大学。2015-2020年在中国科学技术大学做博士后和特任副研究员。2020年8月起，在南京师范大学物理科学与技术学院任副教授。研究方向为介观体系的电子输运、超导体与马约拉纳束缚态的相关输运性质。研究工作在发表Phys. Rev. B、J. Phys.: Condens. Matter、Supercond ]]></description>
      <link>http://www.cqtes.cn/yanjiurenyuan/qingnianjiaoshi/2024-05-30/515.html</link>
      <guid>http://www.cqtes.cn/yanjiurenyuan/qingnianjiaoshi/2024-05-30/515.html</guid>
      <category>青年教师</category>
      <author><![CDATA[]]></author>
      <pubDate>Thu, 30 May 2024 06:07:55 +0000</pubDate>
    </item>
    <item>
      <title><![CDATA[朱杨林]]></title>
      <description><![CDATA[  朱杨林，主要从事量子材料合成和输运研究。2007年至2018年，先后在中国西北大学、中国科学院固体物理研究所和杜兰大学深造，获得本科、硕士和博士学位。2018年毕业后，在宾州州立大学物理系担任博士后研究员，期间专注于新型磁性二维材料和拓扑材料的合成与性质研究。近年来，已在Nature Communications，Physical Review R, Physical Re ]]></description>
      <link>http://www.cqtes.cn/yanjiurenyuan/qingnianjiaoshi/2024-05-30/514.html</link>
      <guid>http://www.cqtes.cn/yanjiurenyuan/qingnianjiaoshi/2024-05-30/514.html</guid>
      <category>青年教师</category>
      <author><![CDATA[]]></author>
      <pubDate>Thu, 30 May 2024 06:06:28 +0000</pubDate>
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