Decoupling the Failure Mechanism of 360 Wh kg <sup>−1</sup> Lithium‐Ion Pouch Cell During Overcharging

S Shuwei Li Y Yi Wang A Anxing Zhou (Beijing National Laboratory for Condensed Matter Physics) Z Zhonghao Li (Tianmu Lake Institute of Advanced Energy Storage Technologies Co. Ltd. Liyang Jiangsu 213300 China) G Guanghai Chen (Beijing Welion New Energy Technology Co., Ltd. Beijing 102402 China) Q Qi Yang W Wenjun Li H Huigen Yu (Beijing Welion New Energy Technology Co., Ltd. Beijing 102402 China) X Xuebing Chen Y Yuanxi Wang (National Key Laboratory of Electronic Films and Integrated Devices, School of Integrated Circuit Science and Engineering University of Electronic Science and Technology of China Chengdu 611731 P.R. China) L Liquan Chen (Beijing Frontier Research Center on Clean Energy) Z Zhaoxiang Wang (Department of Pathophysiology, School of Basic Medicine, Key Laboratory for Epigenetics of Dongguan City, Guangdong Provincial Key Laboratory of Medical Immunology and Molecular Diagnostics, Guangdong Medical University) H Hong Li X Xuefeng Wang (Beijing National Laboratory for Condensed Matter Physics)

Abstract

Abstract Increasing the energy density of lithium‐ion batteries (LIBs) raises safety risks. Understanding failure mechanisms, especially during abuse, is essential for improved battery design and management. In this study, multiscale characterization techniques are employed to systematically investigate the overcharge behavior (from 100% to 130% state of charge) of a 360 Wh kg −1 pouch cell with Ni‐rich cathode and SiO x @Graphite anode. Further decoupling elucidates that the primary failure mechanism is the interfacial and structural degradation of the anode, including lithium plating on graphite, volume expansion and crack propagation in SiO x particles, and continuous reconstruction of the solid electrolyte interphase (SEI) film, which are further promoted by dissolved Ni ions (the Ni content on the anode increases from 0.005% to 0.268% after overcharging to 5.25 V) and by released oxygen species from the Ni‐rich cathode. Ni ions (mainly as Ni 2+ ) accumulate on Li‐plating areas on graphite. These crosstalk reactions significantly influence the stability of both electrodes, causing severe phase transition (from LiC 6 to LiC 12 on the anode and from layered to rock‐salt phase on the cathode), continuous electrolyte decomposition and harmful gas evolution, which accelerates full‐cell failure. These findings can provide guidance for the optimization of battery safety management systems.

Article Details

Volume / Issue Vol. 38, Issue 9
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

S

Shuwei Li

Y

Yi Wang

A

Anxing Zhou

Beijing National Laboratory for Condensed Matter Physics

Z

Zhonghao Li

Tianmu Lake Institute of Advanced Energy Storage Technologies Co. Ltd. Liyang Jiangsu 213300 China

G

Guanghai Chen

Beijing Welion New Energy Technology Co., Ltd. Beijing 102402 China

Q

Qi Yang

W

Wenjun Li

H

Huigen Yu

Beijing Welion New Energy Technology Co., Ltd. Beijing 102402 China

X

Xuebing Chen

Y

Yuanxi Wang

National Key Laboratory of Electronic Films and Integrated Devices, School of Integrated Circuit Science and Engineering University of Electronic Science and Technology of China Chengdu 611731 P.R. China

L

Liquan Chen

Beijing Frontier Research Center on Clean Energy

Z

Zhaoxiang Wang

Department of Pathophysiology, School of Basic Medicine, Key Laboratory for Epigenetics of Dongguan City, Guangdong Provincial Key Laboratory of Medical Immunology and Molecular Diagnostics, Guangdong Medical University

H

Hong Li

X

Xuefeng Wang

Beijing National Laboratory for Condensed Matter Physics