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Antimony nanoparticles encapsulated in three-dimensional porous carbon frameworks for high-performance rechargeable batteries

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【作者】 An-Qi Chen; Si-Guang Guo; Yu Liu; Ling Long; Zhuo Li; Biao Gao; Paul K.Chu; Kai-Fu Huo;

【Author】 An-Qi Chen;Si-Guang Guo;Yu Liu;Ling Long;Zhuo Li;Biao Gao;Paul K.Chu;Kai-Fu Huo;The State Key Laboratory of Refractories and Metallurgy and Institute of Advanced Materials and Nanotechnology,Wuhan University of Science and Technology;Hubei Huazhong Electric Power Technology Development Co.,Ltd.Huazhong Electric Power Technology Building;Department of Physics and Department of Materials Science and Engineering,City University of Hong Kong;Wuhan National Laboratory for Optoelectronics (WNLO),Huazhong University of Science and Technology;

【通讯作者】 Yu Liu;Zhuo Li;

【机构】 The State Key Laboratory of Refractories and Metallurgy and Institute of Advanced Materials and Nanotechnology,Wuhan University of Science and Technology; Hubei Huazhong Electric Power Technology Development Co.,Ltd.Huazhong Electric Power Technology Building; Department of Physics and Department of Materials Science and Engineering,City University of Hong Kong; Wuhan National Laboratory for Optoelectronics (WNLO),Huazhong University of Science and Technology;

【摘要】 Antimony (Sb) is regarded as a potential candidate for next-generation anode materials for rechargeable batteries because it has a high theoretical specific capacity,excellent conductivity and appropriate reaction potential.However,Sb-based anodes suffer from severe volume expansion of>135%during the lithiation–delithiation process.Hence,we construct a novel Sb@C composite encapsulating the Sb nanoparticles into highly conductive three-dimensional porous carbon frameworks via the onestep magnesiothermic reduction (MR).The porous carbon provides buffer spaces to accommodate the volume expansion of Sb.Meanwhile,the three-dimensional (3D)interconnected carbon frameworks shorten the ion/electron transport pathway and inhibit the overgrowth of unstable solid-electrolyte interfaces (SEIs).Consequently,the 3D Sb@C composite displays remarkable electrochemical performance,including a high average Coulombic efficiency (CE) of>99%,high initial capability of 989 mAh·g-1,excellent cycling stability for over 1000cycles at a high current density of 5 A·g-1.Furthermore,employing a similar approach,this 3D Sb@C design paradigm holds promise for broader applications across fast-charging and ultralong-life battery systems beyond Li+.This work aims to advance practical applications for Sb-based anodes in next-generation batteries.

【Abstract】 Antimony (Sb) is regarded as a potential candidate for next-generation anode materials for rechargeable batteries because it has a high theoretical specific capacity,excellent conductivity and appropriate reaction potential.However,Sb-based anodes suffer from severe volume expansion of>135%during the lithiation–delithiation process.Hence,we construct a novel Sb@C composite encapsulating the Sb nanoparticles into highly conductive three-dimensional porous carbon frameworks via the onestep magnesiothermic reduction (MR).The porous carbon provides buffer spaces to accommodate the volume expansion of Sb.Meanwhile,the three-dimensional (3D)interconnected carbon frameworks shorten the ion/electron transport pathway and inhibit the overgrowth of unstable solid-electrolyte interfaces (SEIs).Consequently,the 3D Sb@C composite displays remarkable electrochemical performance,including a high average Coulombic efficiency (CE) of>99%,high initial capability of 989 mAh·g-1,excellent cycling stability for over 1000cycles at a high current density of 5 A·g-1.Furthermore,employing a similar approach,this 3D Sb@C design paradigm holds promise for broader applications across fast-charging and ultralong-life battery systems beyond Li+.This work aims to advance practical applications for Sb-based anodes in next-generation batteries.

【基金】 financially supported by the National Natural Science Foundation of China (No. 22309056);the National Key R&.D Program of China (No. 2022YFB2404800);the Basic Research Program of Shenzhen Municipal Science and Technology Innovation Committee (No. JCYJ20210324141613032);the Knowledge Innovation Project of Wuhan City (No. 2022010801010303);the City University of Hong Kong Strategic Research Grant (SRG), Hong Kong, China (No. 7005505);the City University of Hong Kong Donation Research Grant, Hong Kong, China (No. DON-RMG 9229021);the Postdoctoral Fellowship Program of CPSF (No. GZB20230552)
  • 【文献出处】 Rare Metals ,稀有金属(英文版) , 编辑部邮箱 ,2025年05期
  • 【分类号】TB383.1;TG146.18;TM91
  • 【下载频次】3
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