Atomic Level Fabrication of Oxychloride Interface for High‐Rate and High‐Voltage Lithium‐Ion Batteries

Y Yipeng Sun J Jinjin Ma (Eastern Institute for Advanced Study, Ningbo Key Laboratory of All‐Solid‐State Battery, Zhejiang Key Laboratory of All‐Solid‐State Battery Ningbo Institute of Digital Twin Eastern Institute of Technology, Ningbo Ningbo 315200 P.R. China) X Xiaozhang Yao (Department of Mechanical and Materials Engineering) H Haoqi Ren (Department of Mechanical and Materials Engineering University of Western Ontario London Ontario N6A 5B9 Canada) W Wen Zhang L Lihua Feng (Eastern Institute for Advanced Study, Ningbo Key Laboratory of All‐Solid‐State Battery, Zhejiang Key Laboratory of All‐Solid‐State Battery Ningbo Institute of Digital Twin Eastern Institute of Technology, Ningbo Ningbo 315200 P.R. China) H Haoxiong Hu (Eastern Institute for Advanced Study Ningbo Institute of Digital Twin Eastern Institute of Technology Ningbo China) X Xiaoting Lin Y Yingjie Gao Y Yi Guan (State Key Laboratory of Emerging Infectious Diseases, School of Public Health, Li Ka Shing Faculty of Medicine, The University of Hong Kong) C Changhong Wang X Xueliang Sun

Abstract

Abstract In recent years, oxychloride‐based materials have emerged as a promising solid‐state electrolyte (SSE) candidate owing to its ultrahigh ionic conductivity and decent cathode compatibility. Although the fabrication of SSE coatings for cathode materials has been recognized as a promising strategy, a precise synthesis of oxychloride‐based SSE coating is still not realized due to the lack of appropriate preparation method. As a proof of concept, we propose a superior lithium‐ion conductive aluminum‐based oxychloride (LAOC) coating synthesized by atomic level fabrication strategy with unique self‐limiting reaction mechanism. The LAOC modified lithium cobalt oxide (LCO) cathode exhibits a high capacity retention of 86.4% after 500 cycles at 5 C and significantly improved high‐voltage cycling stability. The outstanding performance is ascribed to the high interfacial ionic conductivity and construction of robust cathode electrolyte interphase. The ionic conductivity of LCO increased from 1.785 × 10 −7 to 2.823 × 10 −6 S cm −1 after LAOC coating. Scanning transmission X‐ray microscopy and transmission electron microscopy reveal that the LAOC coating suppresses interfacial degradation and mitigates the structural collapse of LCO. This study offers great opportunity for the atomic level fabrication of superior ionic conductive oxychloride thin films to realize high performance lithium‐ion batteries.

Article Details

Volume / Issue Vol. 65, Issue 11
Published March 09, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

Y

Yipeng Sun

J

Jinjin Ma

Eastern Institute for Advanced Study, Ningbo Key Laboratory of All‐Solid‐State Battery, Zhejiang Key Laboratory of All‐Solid‐State Battery Ningbo Institute of Digital Twin Eastern Institute of Technology, Ningbo Ningbo 315200 P.R. China

X

Xiaozhang Yao

Department of Mechanical and Materials Engineering

H

Haoqi Ren

Department of Mechanical and Materials Engineering University of Western Ontario London Ontario N6A 5B9 Canada

W

Wen Zhang

L

Lihua Feng

Eastern Institute for Advanced Study, Ningbo Key Laboratory of All‐Solid‐State Battery, Zhejiang Key Laboratory of All‐Solid‐State Battery Ningbo Institute of Digital Twin Eastern Institute of Technology, Ningbo Ningbo 315200 P.R. China

H

Haoxiong Hu

Eastern Institute for Advanced Study Ningbo Institute of Digital Twin Eastern Institute of Technology Ningbo China

X

Xiaoting Lin

Y

Yingjie Gao

Y

Yi Guan

State Key Laboratory of Emerging Infectious Diseases, School of Public Health, Li Ka Shing Faculty of Medicine, The University of Hong Kong

C

Changhong Wang

X

Xueliang Sun