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High‐Voltage Charging‐Induced Strain, Heterogeneity, and Micro‐Cracks in Secondary Particles of a Nickel‐Rich Layered Cathode Material.

Authors :
Mao, Yuwei
Wang, Xuelong
Xia, Sihao
Zhang, Kai
Wei, Chenxi
Bak, Seongmin
Shadike, Zulipiya
Liu, Xuejun
Yang, Yang
Xu, Rong
Pianetta, Piero
Ermon, Stefano
Stavitski, Eli
Zhao, Kejie
Xu, Zhengrui
Lin, Feng
Yang, Xiao‐Qing
Hu, Enyuan
Liu, Yijin
Source :
Advanced Functional Materials; 5/2/2019, Vol. 29 Issue 18, pN.PAG-N.PAG, 1p
Publication Year :
2019

Abstract

Nickel‐rich layered materials LiNi1‐x‐yMnxCoyO2 are promising candidates for high‐energy‐density lithium‐ion battery cathodes. Unfortunately, they suffer from capacity fading upon cycling, especially with high‐voltage charging. It is critical to have a mechanistic understanding of such fade. Herein, synchrotron‐based techniques (including scattering, spectroscopy, and microcopy) and finite element analysis are utilized to understand the LiNi0.6Mn0.2Co0.2O2 material from structural, chemical, morphological, and mechanical points of view. The lattice structural changes are shown to be relatively reversible during cycling, even when 4.9 V charging is applied. However, local disorder and strain are induced by high‐voltage charging. Nano‐resolution 3D transmission X‐ray microscopy data analyzed by machine learning methodology reveal that high‐voltage charging induced significant oxidation state inhomogeneities in the cycled particles. Regions at the surface have a rock salt–type structure with lower oxidation state and build up the impedance, while regions with higher oxidization state are scattered in the bulk and are likely deactivated during cycling. In addition, the development of micro‐cracks is highly dependent on the pristine state morphology and cycling conditions. Hollow particles seem to be more robust against stress‐induced cracks than the solid ones, suggesting that morphology engineering can be effective in mitigating the crack problem in these materials. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
1616301X
Volume :
29
Issue :
18
Database :
Complementary Index
Journal :
Advanced Functional Materials
Publication Type :
Academic Journal
Accession number :
136174157
Full Text :
https://doi.org/10.1002/adfm.201900247