Enabling Electrochemical–Mechanical Robustness of Ultra‐High Ni Cathode via Self‐Supported Primary‐Grain‐Alignment Strategy

Author:

Hou Yu‐Kun12,Li Chenxi3,Ren Dongsheng1,He Feixiong2,Zhuang Kaijun14,Yin Shuo5,Yuan Guohe5,Wang Yiqiao5,Guo Yi1,Liu Saiyue1,Sun Peng6,Zhang Zhihua6,Tan Tiening2,Zhu Gaolong2,Lu Languang1,Liu Xiang3ORCID,Ouyang Minggao1

Affiliation:

1. School of Vehicle and Mobility Tsinghua University Beijing 100084 China

2. Prof. Ouyang Minggao Academician Workstation Sichuan new Energy Vehicle innovation Center Co., Ltd. Yibin 644000 China

3. School of Materials Science and Engineering Beihang University Beijing 100191 China

4. School of Control and Computer Engineering North China Electric Power University Beijing 102208 China

5. CNGR advanced material Co., Ltd. Tongren 554000 China

6. Changzhou Institute of Advanced Manufacturing Technology 213000 Changzhou China

Abstract

AbstractThe electrochemical–mechanical degradation of ultrahigh Ni cathode for lithium‐ion batteries is a crucial aspect that limits the cycle life and safety of devices. Herein, the study reports a facile strategy involving rational design of primary grain crystallographic orientation within polycrystalline cathode, which well enhanced its electro‐mechanical strength and Li+ transfer kinetics. Ex situ and in situ experiments/simulations including cross‐sectional particle electron backscatter diffraction (EBSD), single‐particle micro‐compression, thermogravimetric analysis combined with mass spectrometry (TGA‐MS), and finite element modeling reveal that, the primary‐grain‐alignment strategy effectively mitigates the particle pulverization, lattice oxygen release thereby enhances battery cycle life and safety. Besides the preexisting doping and coating methodologies to improve the stability of Ni‐rich cathode, the primary‐grain‐alignment strategy, with no foreign elements or heterophase layers, is unprecedently proposed here. The results shed new light on the study of electrochemical–mechanical strain alleviation for electrode materials.

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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