{"id":187,"date":"2025-05-14T20:33:57","date_gmt":"2025-05-14T12:33:57","guid":{"rendered":"http:\/\/www.yu-sbatlab.399339.xyz\/?page_id=187"},"modified":"2026-08-22T22:57:12","modified_gmt":"2026-08-22T14:57:12","slug":"publications","status":"publish","type":"page","link":"https:\/\/yu-sbatlab.org\/index.php\/publications\/","title":{"rendered":"Publications"},"content":{"rendered":"\t\t<div data-elementor-type=\"wp-page\" data-elementor-id=\"187\" class=\"elementor elementor-187\">\n\t\t\t\t<div class=\"elementor-element elementor-element-776598c e-flex e-con-boxed e-con e-parent\" data-id=\"776598c\" data-element_type=\"container\">\n\t\t\t\t\t<div class=\"e-con-inner\">\n\t\t\t\t<div class=\"elementor-element elementor-element-e22c965 elementor-widget elementor-widget-html\" data-id=\"e22c965\" data-element_type=\"widget\" data-widget_type=\"html.default\">\n\t\t\t\t<div class=\"elementor-widget-container\">\n\t\t\t\t\t<p style=\"text-align: left;\"><strong>\u00a0<\/strong><\/p>\r\n\r\n<h2 style=\"border: 0px; font-size: 2.125rem; margin-bottom: 20px; outline: 0px; vertical-align: baseline; line-height: 1.4em; font-family: Montserrat, sans-serif; text-transform: uppercase; letter-spacing: normal; text-align: left;\">SELECTED PUBLICATIONS:<\/h2>\r\n<div style=\"text-align: left;\"><\/div>\r\n<p id=\"year-2026\" style=\"text-align: left;\"><strong>2026<\/strong><\/p>\r\n<ol style=\"text-align: justify;\">\r\n\r\n<li>Ban Fei, Gui Xu, Chaoqi Zhang, Yue Guo, Changzhen Zhan*, Liang Hu, Kai Shi, Qinghua Liang*, Chaoqiang Jiang, <strong><u>Xiaoliang Yu*<\/u><\/strong>. <a href=\"https:\/\/www.sciencedirect.com\/journal\/journal-of-energy-chemistry\">Superlattice chemistry featuring p\u2013d\/\u03c0\u2013d orbital coupling unlocks fast polysulfide conversion kinetics.<\/a> <strong><b>Journal of Energy Chemistry<\/b><\/strong>, 2026, in press.<\/li>\r\n<li>Mingli Xu, Tingcan Li, Zu Chang, Qian Zhang, Kai Shi, Kexin Liu, Luqi Zhou, Mingyuan Jiang, Xuanze Wang, Xiaoyu Ji, <strong><u>Xiaoliang Yu*<\/u><\/strong>, Lei Li*, Jiangfeng Qian*. <a href=\"https:\/\/doi.org\/10.1002\/anie.2554297\">Accessing Four-Sodium Storage in NaxV2(PO4)3 (1\u2264 x\u2264 5) Cathodes via Precise Chemical Pre-Sodiation Toward High-Energy and Long-Life Anode-Free Sodium Batteries.<\/a> <strong><b>Angewandte Chemie International Edition<\/b><\/strong>, 2026, 138(18), e2554297.<\/li>\r\n\r\n<li>Xiaozhen Chen, Kai Shi, Chaoqiang Jiang, Yunhai Zhu, <strong><u>Xiaoliang Yu*<\/u><\/strong>. <a href=\"https:\/\/doi.org\/10.1016\/j.fub.2026.100156\">Data-driven inorganic material design for future all-solid-state batteries: innovations and perspectives.<\/a> <strong><b>Future Batteries<\/b><\/strong>, 2026, 9: 100156.\r\n<\/li>\r\n    <li>Jiaojiao Deng, Xiaozhen Chen, Yu Bai, Jinhan Mo,  <strong><u>Xiaoliang Yu*<\/u><\/strong>.<a href=\"https:\/\/pubs.acs.org\/doi\/abs\/10.1002\/cjoc.70321\"> Data\u2010Driven Electrolyte Design for Advanced Rechargeable Lithium Batteries.<\/a><strong><b> <\/b><\/strong><strong><b>Chinese Journal of Chemistry<\/b><\/strong>,<b><\/b> 2026, 44(3): 403-418.<\/li>\r\n<\/ol>\r\n\r\n<p id=\"year-2025\" style=\"text-align: left;\"><strong>2025<\/strong><\/p>\r\n<ol style=\"text-align: justify;\">\r\n    <li>Genyuan Wang, Tao Zhang, Liang Hu, Kai Shi, <strong><u>Xiaoliang Yu*<\/u><\/strong>. <a href=\"https:\/\/pubs.rsc.org\/ta\/article-abstract\/13\/33\/26880\">Engineering crystalline property of polymer solid electrolytes for boosted electrochemical performances: a critical review.<\/a> <strong><b>Journal of Materials Chemistry A<\/b><\/strong>, 2025, 13(33): 26880-26898.<\/li>\r\n  <li>Guoli Zhang, Wenchao Fu, Jiaqi Zhu, Zhiqing Xue, Tong Qiu, Ping Lu, <strong><u>Xiaoliang Yu*<\/u><\/strong>, Xiao-Xia Liu, Xiaoqi Sun. <a href=\" https:\/\/doi.org\/10.1002\/adfm.202511607\">A Catechol Grafted Polymer Binder Regulating Cation Storage Behaviors in MnO2 Cathode for Rechargeable Aqueous Zn Batteries.<\/a> <strong><b>Advanced Functional Materials<\/b><\/strong>, 2025, 35(52): e11607.<\/li>\r\n    <li>Yu Zhao, Tianlu Ma, Liang Hu, Xiuyun Ren, Xiaoqi Sun, <strong><u>Xiaoliang Yu*<\/u><\/strong>. <a href=\"https:\/\/doi.org\/10.1016\/j.jechem.2025.03.025\">Supramolecular interaction chemistry in polymer electrolytes towards stable lithium metal batteries.<\/a> <strong><b>Journal of Energy Chemistry<\/b><\/strong>, 2025, 107: 154-169.<\/li>\r\n    <li>Xiuyun Ren, Yanmei Wu, Xijie Chen, Liang Hu, Yu Zhao, Tao Zhang, Bingcheng Ge, Xiaoqi Sun, <strong><u>Xiaoliang Yu*<\/u><\/strong>. <a href=\"https:\/\/doi.org\/10.34133\/energymatadv.0184\">Formulating ether-based electrolytes for highly reversible sodium metal anodes at high temperatures.<\/a> <strong><b>Energy Material Advances<\/b><\/strong>, 2025, 6: 0184.<\/li>\r\n    \r\n    \r\n    \r\n    \r\n    \r\n    \r\n    \r\n    \r\n    \r\n    \r\n    \r\n    \r\n    \r\n    \r\n    \r\n    \r\n    \r\n    \r\n<li>Cuicui Li, Haocheng Li, Xiuyun Ren, Liang Hu, Jiaojiao Deng, Jinhan Mo, Xiaoqi Sun*, Guohua Chen*, <strong><u>Xiaoliang Yu*<\/u><\/strong>.<a href=\"https:\/\/pubs.acs.org\/doi\/abs\/10.1021\/acsnano.4c14451\"> Urea Chelation of I+ for High Voltage Aqueous Zinc-Iodine Batteries.<\/a><strong><b> <\/b><\/strong><strong><b>ACS Nano<\/b><\/strong>,<b><\/b> 2025, doi: 10.1021\/acsnano.4c14451.<\/li>\r\n    \r\n\r\n<\/ol>\r\n<p id=\"year-2024\" style=\"text-align: left;\"><strong>2024<\/strong><\/p>\r\n\r\n<ol style=\"text-align: justify;\">\r\n    \r\n     \r\n    <li>Jiaojiao Deng, Haocheng Li, Fei Zheng, Qingsong Weng, Yu Bai, <strong><u>Xiaoliang Yu*<\/u><\/strong>, Qianlin Zhang*, Qinghua Liang*, Baohua Li. <a href=\"https:\/\/www.sciencedirect.com\/science\/article\/pii\/S1001841724011987\">A \u201cbreathable\u201d 3D lithium host with MnO2 nanoflake array for long-lifespan anode-free lithium metal batteries.<\/a><strong><b> <\/b><\/strong><strong><b>Chinese Chemical Letters<\/b><\/strong>,<b><\/b> 2024, 110681.<\/li>\r\n    \r\n    <li>Jiaojiao Deng, Xiuyun Ren, Hai Lin, Liang Hu, Yu Bai,  <strong><u>Xiaoliang Yu*<\/u><\/strong>, Jinhan Mo, Qianling Zhang*, Feiyu Kang, Baohua Li*. <a href=\"https:\/\/https:\/\/www.sciencedirect.com\/science\/article\/pii\/S2095495624005436?via%3Dihub\">Functionally gradient materials for sustainable and high-energy rechargeable lithium batteries: Design principles, progress, and perspectives.<\/a><strong><b> <\/b><\/strong><strong><b>Journal of Energy Chemistry<\/b><\/strong>,<b><\/b> 2024, 99, 426.<\/li>\r\n    \r\n    \t<li>Bingcheng Ge, Jiaojiao Deng, Zhijie Wang, Qinghua Liang, Liang Hu, Xiuyun Ren,Runmin Li, Yuxiao Lin*, Yunsong Li, Qingrong Wang, Bin Han, Yonghong Deng, Xiulin Fan*, Baohua Li*, Guohua Chen*,  <strong><u>Xiaoliang Yu*<\/u><\/strong>. <a href=\"https:\/\/onlinelibrary.wiley.com\/doi\/abs\/10.1002\/adma.202408161\">Aggregate-Dominated Dilute Electrolytes withLow-Temperature-Resistant Ion-Conducting Channels forHighly Reversible Na Plating\/Stripping.<\/a><strong><b> <\/b><\/strong><strong><b>Advanced Materials<\/b><\/strong>,<b><\/b> 2024, 2408161.<\/li>\r\n    \r\n \t<li>Cuicui Li, Liang Hu, Xiuyun Ren, Lu Lin, Changzhen Zhan, Qingsong Weng, Xiaoqi Sun*, <strong><u>Xiaoliang Yu*<\/u><\/strong>. <a href=\"https:\/\/www.x-mol.com\/paperRedirect\/1742915263699587072\">Asymmetric Charge Distribution of Active Centers in Small Molecule Quinone Cathode Boosts High-Energy and High-Rate Aqueous Zinc-Organic Batteries.<\/a><strong><b> <\/b><\/strong><strong><b>Advanced Functional Materials<\/b><\/strong>,<b><\/b> 2024, 34,\u00a02313241.<\/li>\r\n \t<li>Liang Hu, Jiaojiao Deng, Yuxiao Lin, Qinghua Liang, Bingcheng Ge, Qingsong Weng, Yu Bai, Yunsong Li, Yonghong Deng*, Guohua Chen*, <strong><u><b>Xiaoliang Yu<\/b><\/u><\/strong>*. Restructuring Electrolyte Solvation by A Versatile Diluent toward Beyond 99.9% Coulombic Efficiency of Sodium Plating\/Stripping at Ultralow Temperatures. <strong><b>Advanced Materials<\/b><\/strong>, 2024, 36, 2312161.<\/li>\r\n \t<li>Bingcheng Ge, Liang Hu, <strong><u><b>Xiaoliang Yu*<\/b><\/u><\/strong>, Lixu Wang, Carlos Fernandez, Nianjun Yang, Qinghua Liang*, Quan-Hong Yang*. Engineering Triple-Phase Interfaces around the Anode towards Practical Alkali Metal-Air Batteries. <strong><b>Advanced Materials<\/b><\/strong>, 2024, 36, 2400937.<\/li>\r\n \t<li>Ting Ma, Jiaojiao Deng,Yuxiao Lin*,Qinghua Liang,\u00a0Liang Hu,\u00a0Xiaohu Wang,\u00a0Jun Liu,\u00a0Xinsheng Zhao,\u00a0Yinwei Li,\u00a0Ding Nan*,\u00a0<strong><u><b>Xiaoliang Yu<\/b><\/u><\/strong>*. Li-Rich Organosulfur Cathode with Boosted Kinetics for High-Energy Lithium-Sulfur Batteries.\u00a0<strong><b>Energy<\/b><\/strong><strong><b>\u00a0<\/b><\/strong><strong><b>&amp;<\/b><\/strong><strong><b>\u00a0<\/b><\/strong><strong><b>Environmental Materials<\/b><\/strong>, 2024, e12704.<\/li>\r\n<\/ol>\r\n<p id=\"year-2023\" style=\"text-align: left;\"><strong>2023<\/strong><\/p>\r\n\r\n<ol style=\"text-align: justify;\">\r\n \t<li>Liang Hu, Jiaojiao Deng, Qinghua Liang, Junxiong Wu, Bingcheng Ge, Qiang Liu, Guohua Chen*, <strong><u><b>Xiaoliang Yu<\/b><\/u><\/strong>*. Engineering current collectors for advanced alkali metal anodes: A review and perspective.<strong><b>Ecomat<\/b><\/strong>, 2023, 5(1), e12269.<\/li>\r\n \t<li>Wanming Teng, Junxiong Wu, Qinghua Liang, Jiaojiao Deng*, Yu Xu, Qiong Liu, Biao Wang, Ting Ma, Ding Nan*, Jun Liu, Baohua Li*, Qingsong Weng, <strong><u><b>Xiaoliang Yu<\/b><\/u><\/strong>*. Designing advanced liquid electrolytes for alkali metal batteries: Principles, progress, and perspectives. <strong><b>Energy<\/b><\/strong><b><\/b><strong><b>&amp;<\/b><\/strong><b><\/b><strong><b>Environmental Materials<\/b><\/strong>,<strong><b>\u00a0<\/b><\/strong>2023,<strong><b>\u00a0<\/b><\/strong>6, e12355.<\/li>\r\n \t<li>Yao Lv, Shifei Huang, Sirong Lu, Tianqi Jia, Yanru Liu, Wenbo Ding, <strong><u><b>Xiaoliang Yu<\/b><\/u><\/strong>, Feiyu Kang, Jiujun Zhang*, Yidan Cao*. Engineering of cobalt-free Ni-rich cathode material by dual-element modification to enable 4.5 V-class high-energy-density lithium-ion batteries. <strong><b>Chemical Engineering Journal<\/b><\/strong>, 2023, 455, 140652.<\/li>\r\n<\/ol>\r\n<p id=\"year-2022\" style=\"text-align: left;\"><strong>2022<\/strong><\/p>\r\n\r\n<ol style=\"text-align: justify;\">\r\n \t<li>Junxiong Wu, Cong Lin, Qinghua Liang, Guodong Zhou, Jiapeng Liu, Gemeng Liang, Man Wang, Baohua Li*, Liang Hu, Francesco Ciucci, Qiang Liu, Guohua Chen*, <strong><u><b>Xiaoliang Yu<\/b><\/u><\/strong>*. Sodium-rich NASICON-structured cathodes for boosting the energy density and lifespan of sodium-free-anode sodium metal batteries. <strong><b>InfoMat<\/b><\/strong>, 2022, 4(4), e12288.<\/li>\r\n \t<li>TingMa, Xiuyun Ren, Liang Hu, Wanming Teng, Xiaohu Wang, Guanglei Wu, Jun Liu, Ding Nan*, and <strong><u><b>Xiaoliang Yu<\/b><\/u><\/strong>*. Functional Polymer Materials for Advanced Lithium Metal Batteries: A Review and Perspective. <strong><b>Polymers<\/b><\/strong>, 2022, 14(17), 3452.<\/li>\r\n \t<li>TingMa, Xiuyun Ren, Liang Hu, Wanming Teng, Xiaohu Wang, Guanglei Wu, Jun Liu, Ding Nan*, Baohua Li, and <strong><u><b>Xiaoliang Yu<\/b><\/u><\/strong>*. A Diluted Electrolyte for Long-Life Sulfurized Polyacrylonitrile-Based Anode-Free Li-S Batteries.\u00a0<strong><b>Polymers<\/b><\/strong>, 2022, 14(16), 3312.<\/li>\r\n \t<li>Geng Zhong, Jiabin Ma, Tianqi Jia, Kangning Cai, Shifei Huang, Xiaolong Ren, Rui Yin, Kuang Yu, Yanbing He, Ling Qiu, Wenbo Ding, <strong><u><b>Xiaoliang Yu<\/b><\/u><\/strong>, Feiyu Kang*, Yidan Cao*. Triazine crosslinked polyionic liquid: An electrolyte-stable, lithiophilic and electrostatic shielding layer for uniform lithium plating\/stripping. <strong><b>Nano Energy<\/b><\/strong>, 2022, 103, 107828.<\/li>\r\n \t<li>Yao Lv, Shifei Huang, Sirong Lu, Wenbo Ding, <strong><u><b>Xiaoliang Yu<\/b><\/u><\/strong>, Gemeng Liang, Jinshuo Zou, Feiyu Kang, Jiujun Zhang*, Yidan Cao*. B<sub>2<\/sub>O<sub>3<\/sub>\/LiBO<sub>2<\/sub>dual-modification layer stabilized Ni-rich cathode for lithium-ion battery. <strong><b>Journal of Power Sources<\/b><\/strong>, 2022, 536, 231510.<\/li>\r\n<\/ol>\r\n<p id=\"year-2021\" style=\"text-align: left;\"><strong>2021<\/strong><\/p>\r\n<ol style=\"text-align: justify;\">\r\n \t<li>Junxiong Wu, Qinghua Liang, <strong><b>Xiaoliang Yu<\/b><\/strong>*, Qiu-Feng L\u00fc,Lianbo Ma, Xianying Qin*, Guohua Chen, and Baohua Li*. Deep eutectic solvents for boosting electrochemical energy storage and conversion: a review and perspective. <strong><b>Advanced Functional Materials<\/b><\/strong>, 2021, 31(22), 2011102.<\/li>\r\n \t<li><strong><u><b>Xiaoliang Yu<\/b><\/u><\/strong>,Ting Liao,Jie Tang*,\u00a0Kun Zhang,\u00a0Shuai Tang,\u00a0Run-Sheng Gao,\u00a0Shiqi Lin,\u00a0Lu-Chang Qin. Edge Engineering in 2D Molybdenum Disulfide: Simultaneous Regulation of Lithium and Polysulfides for Stable Lithium\u2013Sulfur Batteries.\u00a0<strong><b>Advanced Energy &amp; Sustainability Research<\/b><\/strong>, 2021, 2(9), 2100053.<\/li>\r\n\r\n<\/ol>\r\n<p id=\"year-2020\" style=\"text-align: left;\"><strong>2020 and before<\/strong><\/p>\r\n\r\n<ol style=\"text-align: justify;\">\r\n \t<li><strong><u><b>X<\/b><\/u><\/strong><strong><u><b>iaoliang<\/b><\/u><\/strong><strong><u><b> Yu<\/b><\/u><\/strong>, JiaojiaoDeng, Xin\u00a0Yang, Jia Li*, Zheng-Hong Huang*, Baohua Li, Feiyu Kang*. A dual-carbon-anchoring strategy to fabricate flexible LiMn<sub>2<\/sub>O<sub>4<\/sub>\u00a0cathode for advanced lithium-ion batteries with high areal capacity. <strong>Nano Energy<\/strong>, 2020, 67,\u00a0104256.<\/li>\r\n \t<li>JiaojiaoDeng#,<strong><u><b> X<\/b><\/u><\/strong><strong><u><b>iaoliang<\/b><\/u><\/strong><strong><u><b>\u00a0Yu<\/b><\/u><\/strong>#, Jie\u00a0Tang, Lihan Zhang, Kun Zhang, Shiqi Lin, Baohua Li*. Highly reversible lithium storage in a conversion-type ZnCo<sub>2<\/sub>O<sub>4<\/sub>\u00a0anode promoted by NiCl<sub>2-x<\/sub>F<sub>x<\/sub>\u00a0hydrate. <strong>J<\/strong><strong>ournal of<\/strong><strong>\u00a0Mater<\/strong><strong>ials<\/strong><strong>\u00a0Chem<\/strong><strong>istry<\/strong><strong>\u00a0A<\/strong>,\u00a02020, 8,\u00a02356-2363. # contributed equally.<\/li>\r\n \t<li><strong><u><b>X<\/b><\/u><\/strong><strong><u><b>iaoliang<\/b><\/u><\/strong><strong><u><b> Yu<\/b><\/u><\/strong>, JieTang*, Kazuya Terabe, Taizo Sasaki, Runsheng Gao, Yoshikazu Ito, Kensuke Nakura, Kazuko Asano, Masa-aki Suzuki. Fabrication of graphene\/MoS<sub>2<\/sub>\u00a0alternately stacked structure for enhanced lithium storage. <strong>Mater<\/strong><strong>ials<\/strong><strong>\u00a0Chem<\/strong><strong>istry<\/strong><strong>\u00a0<\/strong><strong>and <\/strong><strong>Phys<\/strong><strong>ics<\/strong>,\u00a02020, 239,\u00a0121987.<\/li>\r\n \t<li><b><\/b><strong><u><b>X<\/b><\/u><\/strong><strong><u><b>iaoliang<\/b><\/u><\/strong><strong><u><b> Yu<\/b><\/u><\/strong>, Jiaojiao\u00a0Deng, Ruitao\u00a0Lv, Zheng-Hong Huang*, Baohua Li, Feiyu Kang*. A compact 3D interconnected sulfur cathode for high-energy, high-power and long-life lithium-sulfur batteries. <strong>Energy Storage Mater<\/strong><strong>ials<\/strong>,\u00a02019, 20,\u00a014-23.<\/li>\r\n \t<li>JiaojiaoDeng#,\u00a0<strong><u><b>X<\/b><\/u><\/strong><strong><u><b>iaoliang<\/b><\/u><\/strong><strong><u><b>\u00a0Yu<\/b><\/u><\/strong>#, Xianying\u00a0Qin, Dong Zhou, Lihan Zhang, Huan Duan, Feiyu Kang, Baohua Li*, Guoxiu Wang*.\u00a0Co-B Nanoflakes as Multifunctional Bridges in ZnCo<sub>2<\/sub>O<sub>4<\/sub>\u00a0Micro-\/Nanospheres for Superior Lithium Storage with Boosted Kinetics and Stability. <strong>Adv<\/strong><strong>anced<\/strong><strong>\u00a0Energy Mater<\/strong><strong>ials<\/strong>,\u00a02019, 9(14),\u00a01803612. # contributed equally.<\/li>\r\n \t<li>JiaojiaoDeng#,\u00a0<strong><u><b>X<\/b><\/u><\/strong><strong><u><b>iaoliang<\/b><\/u><\/strong><strong><u><b>\u00a0Yu<\/b><\/u><\/strong>#, Xianying\u00a0Qin, Bilu Liu, Yan-Bing He, Baohua Li*, Feiyu Kang. Controlled synthesis of anisotropic hollow ZnCo<sub>2<\/sub>O<sub>4<\/sub>\u00a0octahedrons for high-performance lithium storage. <strong>Energy Storage Materials<\/strong>,\u00a02018, 11,\u00a0184-190. # contributed equally.<\/li>\r\n \t<li><b><\/b><strong><u><b>X<\/b><\/u><\/strong><strong><u><b>iaoliang<\/b><\/u><\/strong><strong><u><b> Yu<\/b><\/u><\/strong>, Jiaojiao\u00a0Deng, Changzhen\u00a0Zhan, Ruitao Lv, Zheng-Hong Huang, Feiyu Kang. A high-power lithium-ion hybrid electrochemical capacitor based on citrate-derived electrodes. <strong>Electrochim<\/strong><strong>ica<\/strong><strong>\u00a0Acta<\/strong>,\u00a02017, 228,\u00a076.<\/li>\r\n \t<li>JiaojiaoDeng#,<strong><u><b> X<\/b><\/u><\/strong><strong><u><b>iaoliang<\/b><\/u><\/strong><strong><u><b> Yu<\/b><\/u><\/strong>#, Yanbing\u00a0He, Baohua Li*, Quan-Hong Yang, Feiyu Kang. A sliced orange-shaped ZnCo<sub>2<\/sub>O<sub>4<\/sub>\u00a0material as anode for high-performance lithium ion battery. <strong>Energy Storage Mater<\/strong><strong>ials<\/strong>,\u00a02017, 6,\u00a061-69. #\u00a0contributed equally.<\/li>\r\n \t<li><b><\/b><strong><u><b>X<\/b><\/u><\/strong><strong><u><b>iaoliang<\/b><\/u><\/strong><strong><u><b> Yu<\/b><\/u><\/strong>, C. Zhan, Ruitao\u00a0Lv, Yu Bai, Yuxiao Lin, Zheng-Hong Huang*, Wanci Shen, Xinping Qiu, Feiyu Kang*. Ultrahigh-rate and high-density lithium-ion capacitors through hybriding nitrogen-enriched hierarchical porous carbon cathode with prelithiated microcrystalline graphite anode. <strong>Nano Energy<\/strong>, 2015, 15,\u00a043-53.<\/li>\r\n \t<li><strong><u><b>X<\/b><\/u><\/strong><strong><u><b>iaoliang<\/b><\/u><\/strong><strong><u><b> Yu<\/b><\/u><\/strong>, JianfengZhao, Ruitao\u00a0Lv, Qinghua Liang, Changzhen Zhan, Yu Bai, Zheng-Hong Huang*, Wanci Shen, Feiyu Kang*. Facile synthesis of nitrogen-doped carbon nanosheets with hierarchical porosity for high performance supercapacitors and lithium\u2013sulfur batteries. <strong>J<\/strong><strong>ournal of<\/strong><strong>\u00a0Mater<\/strong><strong>ials<\/strong><strong>\u00a0Chem<\/strong><strong>istry<\/strong><strong>\u00a0A<\/strong>, 2015, 3,\u00a018400-18405.<\/li>\r\n<\/ol>\r\n&nbsp;\r\n\r\n<style>\r\n  \/* \u6837\u5f0f\u53ef\u4ee5\u6839\u636e\u4f60\u7684\u9700\u6c42\u81ea\u5b9a\u4e49 *\/\r\n  .year-directory {\r\n    position: fixed;\r\n    bottom: 20px;\r\n    left: 20px;\r\n    font-family: \u9ed1\u4f53;\r\n    font-style: italic;\r\n    font-size: 20px;\r\n    z-index: 1000;\r\n  }\r\n  .year-link {\r\n    display: block;\r\n    margin-bottom: 5px;\r\n    text-decoration: none;\r\n    color: #333;\r\n    position: relative;\r\n  }\r\n  .year-link.active {\r\n    font-weight: bold; \/* \u9009\u4e2d\u5e74\u4efd\u65f6\u589e\u52a0\u5b57\u4f53\u52a0\u7c97 *\/\r\n    font-size: 22px; \/* \u9009\u4e2d\u5e74\u4efd\u65f6\u589e\u5927\u5b57\u4f53\u5927\u5c0f *\/\r\n  }<\/p>\r\n<p>\/* \u5728 1080P \u5206\u8fa8\u7387\u4e0b\u8c03\u6574\u5e74\u4efd\u76ee\u5f55\u7684\u6837\u5f0f *\/\r\n@media screen and (min-width: 1920px) and (max-width: 2559px) {\r\n    .year-directory {\r\n        font-size: 20px;\r\n        bottom: 20px;\r\n        left: 20px;\r\n    }\r\n    .year-link.active {\r\n    font-size: 22px; 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