Interfacial Failure and Self‐Healing in Solid‐State Batteries

X Xinxin Zhu (Xi’an Key Laboratory of Functional Supramolecular Structure and Materials, Key Laboratory of Synthetic and Natural Functional Molecule of Ministry of Education, College of Chemistry and Materials Science) T Tengfei Dai (State Key Laboratory of Coordination Chemistry, MOE Key Laboratory of Mesoscopic Chemistry, MOE Key Laboratory of High Performance Polymer Materials and Technology, Jiangsu Key Laboratory of Advanced Organic Materials, Suzhou Key Laboratory of Green Intelligent Manufacturing of New Energy Materials and Devices, Tianchang New Materials and Energy Technology Research Center, Institute of Green Chemistry and Engineering, School of Sustainable Energy and Resources, School of Chemistry and Chemical Engineering) W Wendi Dou (College of Chemical and Biological Engineering Zhejiang University Hangzhou China) Z Zhiheng Li K Kaihua Wen (Department of Materials Science and Engineering City University of Hong Kong Hong Kong China) Y Yanqun Lv (College of Chemical and Biological Engineering) M Ming Zhao J Jun Lu Z Zaiping Guo (Department of Materials Science and Engineering)

Abstract

ABSTRACT Solid‐state batteries hold great promise for simultaneously improving energy density and intrinsic safety. However, their practical application is severely impeded by interfacial instabilities arising from coupled mechanical, chemical, and electrochemical degradation during cycling, ultimately resulting in rapid performance decay. Although conventional strategies, such as interfacial coatings or electrode structural optimization, have partially improved electrochemical performance, their inherently static nature renders them ill‐equipped to adapt to the continuous and dynamic evolution of interfacial damage during long‐term operation. To address these persistent challenges, dynamic interfacial self‐healing has emerged as a compelling strategy for developing highly durable and stable solid‐state batteries. In this review, we first discuss the origins and evolution of mechanical, chemical, and electrochemical failures at the interface, highlighting their intricate interplay. Recent progress in self‐healing strategies, including physical flow, chemical restoration, external stimuli, and electric fields was subsequently analyzed to solve specific interfacial failure behavior. Perspectives on the emerging strategies and key challenges for achieving high self‐healing efficiency were provided in the end. The development of self‐healing mechanisms presents a highly viable route toward the realization of robust, low‐pressure solid‐state batteries.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 13, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

X

Xinxin Zhu

Xi’an Key Laboratory of Functional Supramolecular Structure and Materials, Key Laboratory of Synthetic and Natural Functional Molecule of Ministry of Education, College of Chemistry and Materials Science

T

Tengfei Dai

State Key Laboratory of Coordination Chemistry, MOE Key Laboratory of Mesoscopic Chemistry, MOE Key Laboratory of High Performance Polymer Materials and Technology, Jiangsu Key Laboratory of Advanced Organic Materials, Suzhou Key Laboratory of Green Intelligent Manufacturing of New Energy Materials and Devices, Tianchang New Materials and Energy Technology Research Center, Institute of Green Chemistry and Engineering, School of Sustainable Energy and Resources, School of Chemistry and Chemical Engineering

W

Wendi Dou

College of Chemical and Biological Engineering Zhejiang University Hangzhou China

Z

Zhiheng Li

K

Kaihua Wen

Department of Materials Science and Engineering City University of Hong Kong Hong Kong China

Y

Yanqun Lv

College of Chemical and Biological Engineering

M

Ming Zhao

J

Jun Lu

Z

Zaiping Guo

Department of Materials Science and Engineering