材料科学技术(英文版)2021,Vol.75Issue(16) :110-117.

In-situ encapsulation of α-Fe2O3 nanoparticles into ZnFe2O4 micro-sized capsules as high-performance lithium-ion battery anodes

Wei Wu Yongshan Wei Hongjiang Chen Keyan Wei Zhitong Li Jianhui He Libo Deng Lei Yao Haitao Yang
材料科学技术(英文版)2021,Vol.75Issue(16) :110-117.

In-situ encapsulation of α-Fe2O3 nanoparticles into ZnFe2O4 micro-sized capsules as high-performance lithium-ion battery anodes

Wei Wu 1Yongshan Wei 2Hongjiang Chen 2Keyan Wei 2Zhitong Li 2Jianhui He 2Libo Deng 3Lei Yao 2Haitao Yang2
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作者信息

  • 1. Shenzhen Key Laboratory of Special Functional Materials,Shenzhen Engineering Laboratory for Advanced Technology of Ceramics,Guangdong Research Center for Interfacial Engineering of Functional Materials,College of Materials Science and Engineering,Shenzhen University,Shenzhen 518060,China;College of Chemistry and Environmental Engineering,Shenzhen University,Shenzhen 518060,China
  • 2. Shenzhen Key Laboratory of Special Functional Materials,Shenzhen Engineering Laboratory for Advanced Technology of Ceramics,Guangdong Research Center for Interfacial Engineering of Functional Materials,College of Materials Science and Engineering,Shenzhen University,Shenzhen 518060,China
  • 3. College of Chemistry and Environmental Engineering,Shenzhen University,Shenzhen 518060,China
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Abstract

Transition metal oxides as anode materials for high-performance lithium-ion batteries suffer from severe capacity decay,originating primarily from particle pulverization upon volume expansion/shrinkage and the intrinsically sluggish electron/ion transport.Herein,in-situ encapsulation of α-Fe2O3 nanoparticles into micro-sized ZnFe2O4 capsules is facilely fulfilled through a co-precipitation process and followed by heat-treatment at optimal calcination temperature.The porous ZnFe2C4 scaffold affords a synergistic confinement effect to suppress the grain growth of α-Fe2O3 nanocrystals during the calcination process and to accommodate the stress generated by volume expansion during the charge/discharge process,leading to an enhanced interfacial conductivity and inhibit electrode pulverization and mechanical failure in the active material.With these merits,the prepared α-Fe2O3/ZnFe2O4 composite delivers prolonged cycling stability and improved rate capability with a higher specific capacity than sole α-Fe2O3 and ZnFe2O4.The discharge capacity is retained at 700 mAh g-1 after 500 cycles at 200 mA g-1 and 940 mAh g-1 after 50 cycles at 100 mA g-1.This work provides a new perspective in designing transition metal oxides for advanced lithium-ion batteries with superior electrochemical properties.

Key words

α-Fe2O3/ZnFe2O4 ceramic composite/Co-precipitation process/Confinement effect/Interfacial effect/Grain growth/High conductivity/Lithium-ion battery anodes

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基金项目

出版年

2021
材料科学技术(英文版)
中国金属学会 中国材料研究学会 中国科学院金属研究所

材料科学技术(英文版)

CSTPCDCSCDSCI
影响因子:0.657
ISSN:1005-0302
被引量1
参考文献量43
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