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Author:

Wu Tianhao (Wu Tianhao.) | Liu Xiang (Liu Xiang.) | Zhang Xu (Zhang Xu.) | Lu Yue (Lu Yue.) (Scholars:卢岳) | Wang Boya (Wang Boya.) | Deng Qingsong (Deng Qingsong.) | Yang Yubo (Yang Yubo.) | Wang Errui (Wang Errui.) | Lyu Zhongtian (Lyu Zhongtian.) | Li Yaoqian (Li Yaoqian.) | Wang Yongtao (Wang Yongtao.) | Lyu Yan (Lyu Yan.) | He Cunfu (He Cunfu.) (Scholars:何存富) | Ren Yang (Ren Yang.) | Xu Guiliang (Xu Guiliang.) | Sun Xueliang (Sun Xueliang.) | Amine Khalil (Amine Khalil.) | Yu Haijun (Yu Haijun.) (Scholars:尉海军)

Indexed by:

EI Scopus SCIE PubMed

Abstract:

Lithium-rich layered oxides (LLOs) are prospective cathode materials for next-generation lithium-ion batteries (LIBs), but severe voltage decay and energy attenuation with cycling still hinder their practical applications. Herein, a series of full concentration gradient-tailored agglomerated-sphere LLOs are designed with linearly decreasing Mn and linearly increasing Ni and Co from the particle center to the surface. The gradient-tailored LLOs exhibit noticeably reduced voltage decay, enhanced rate performance, improved cycle stability, and thermal stability. Without any material modifications or electrolyte optimizations, the gradient-tailored LLO with medium-slope shows the best electrochemical performance, with a very low average voltage decay of 0.8 mV per cycle as well as a capacity retention of 88.4% within 200 cycles at 200 mA g-1 . These excellent findings are due to spinel structure suppression, electrochemical stress optimization, and Jahn-Teller effect inhibition. Further investigation shows that the gradient-tailored LLO reduces the thermal release percentage by as much as about 41% when the battery is charged to 4.4 V. This study provides an effective method to suppress the voltage decay of LLOs for further practical utilization in LIBs and also puts forward a bulk-structure design strategy to prepare better electrode materials for different rechargeable batteries.

Keyword:

Li-ion batteries lithium-rich layered oxides voltage decay full concentration gradient electrochemical stress

Author Community:

  • [ 1 ] [Wu Tianhao]Faculty of Materials and Manufacturing, Key Laboratory of Advanced Functional Materials, Education Ministry of China, Beijing University of Technology, Beijing, 100124, P. R. China
  • [ 2 ] [Liu Xiang]Chemical Sciences and Engineering Division, Argonne National Laboratory, 9700 South Cass Avenue, Lemont, IL, 60439, USA
  • [ 3 ] [Zhang Xu]Faculty of Materials and Manufacturing, Key Laboratory of Advanced Functional Materials, Education Ministry of China, Beijing University of Technology, Beijing, 100124, P. R. China
  • [ 4 ] [Lu Yue]Institute of Microstructure and Properties of Advanced Materials, Key Laboratory of Microstructure and Property of Advanced Materials, Beijing University of Technology, Beijing, 100124, P. R. China
  • [ 5 ] [Wang Boya]Faculty of Materials and Manufacturing, Key Laboratory of Advanced Functional Materials, Education Ministry of China, Beijing University of Technology, Beijing, 100124, P. R. China
  • [ 6 ] [Deng Qingsong]Institute of Microstructure and Properties of Advanced Materials, Key Laboratory of Microstructure and Property of Advanced Materials, Beijing University of Technology, Beijing, 100124, P. R. China
  • [ 7 ] [Yang Yubo]Faculty of Materials and Manufacturing, Key Laboratory of Advanced Functional Materials, Education Ministry of China, Beijing University of Technology, Beijing, 100124, P. R. China
  • [ 8 ] [Wang Errui]Faculty of Materials and Manufacturing, Key Laboratory of Advanced Functional Materials, Education Ministry of China, Beijing University of Technology, Beijing, 100124, P. R. China
  • [ 9 ] [Lyu Zhongtian]Faculty of Materials and Manufacturing, Research Center for Non-destructive Testing & Evaluation, Beijing University of Technology, Beijing, 100124, P. R. China
  • [ 10 ] [Li Yaoqian]Faculty of Materials and Manufacturing, Research Center for Non-destructive Testing & Evaluation, Beijing University of Technology, Beijing, 100124, P. R. China
  • [ 11 ] [Wang Yongtao]Faculty of Materials and Manufacturing, Key Laboratory of Advanced Functional Materials, Education Ministry of China, Beijing University of Technology, Beijing, 100124, P. R. China
  • [ 12 ] [Lyu Yan]Faculty of Materials and Manufacturing, Research Center for Non-destructive Testing & Evaluation, Beijing University of Technology, Beijing, 100124, P. R. China
  • [ 13 ] [He Cunfu]Faculty of Materials and Manufacturing, Research Center for Non-destructive Testing & Evaluation, Beijing University of Technology, Beijing, 100124, P. R. China
  • [ 14 ] [Ren Yang]X-ray Science Division, Advanced Photon Sources, Argonne National Laboratory, 9700 South Cass Avenue, Lemont, IL, 60439, USA
  • [ 15 ] [Xu Guiliang]Chemical Sciences and Engineering Division, Argonne National Laboratory, 9700 South Cass Avenue, Lemont, IL, 60439, USA
  • [ 16 ] [Sun Xueliang]Department of Mechanical and Materials Engineering, University of Western Ontario, London, Ontario, N6A 5B8, Canada
  • [ 17 ] [Amine Khalil]Chemical Sciences and Engineering Division, Argonne National Laboratory, 9700 South Cass Avenue, Lemont, IL, 60439, USA
  • [ 18 ] [Yu Haijun]Faculty of Materials and Manufacturing, Key Laboratory of Advanced Functional Materials, Education Ministry of China, Beijing University of Technology, Beijing, 100124, P. R. China

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Source :

Advanced materials

ISSN: 1521-4095

Year: 2021

Issue: 2

Volume: 33

Page: e2001358

2 9 . 4 0 0

JCR@2022

ESI Discipline: MATERIALS SCIENCE;

ESI HC Threshold:116

JCR Journal Grade:1

Cited Count:

WoS CC Cited Count:

SCOPUS Cited Count: 113

ESI Highly Cited Papers on the List: 0 Unfold All

WanFang Cited Count:

Chinese Cited Count:

30 Days PV: 3

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