Revealing the Design Principle for Highly Compositional Reversible Transition Metal Chalcogenide Electrodes: A Perspective

T Tongfeng Liu (Zhongda Hospital, School of Life Sciences and Technology, Advanced Institute for Life and Health, Southeast University) Y Yirun Wang (School of Materials Science and Engineering Tianjin Key Laboratory of Composite and Functional Materials Tianjin University Tianjin 300350 P. R. China) J Jingwen Zhou (College of Science) G Guangxuan Wu (School of Energy (National Industry‐Education Platform for Energy Storage) School of Materials Science and Engineering and Tianjin Key Laboratory of Composite and Functional Materials Tianjin University Tianjin People's Republic of China) B Biao Chen (Department of Chemical Physics, School of Chemistry and Materials Science, Hefei National Research Center for Physical Sciences at the Microscale) G Guangmin Zhou F Fang He C Chunnian He W Wenbin Hu N Naiqin Zhao N Ningning Wu (Beijing National Laboratory for Molecular Sciences Organic Solids Laboratory Institute of Chemistry Chinese Academy of Sciences Beijing China)

Abstract

Abstract Transition metal chalcogenides (TMCs) are considered a promising kind of anode material for next‐generation alkali metal ion batteries (AMIBs) due to their multielectron‐transfer energy storage mechanism and low cost. However, their sluggish reaction kinetics lead to irreversible conversion reaction during cycling, resulting in low compositional reversibility and rapid battery failure. To improve their electrochemical performance in AMIBs, many efforts involving structure, composition, and interface modifications have been devoted. However, there is still a lack of a systematic understanding of the reversible conversion reaction mechanism and design principle for highly compositional reversible TMC electrodes. This perspective discusses the reversible conversion mechanism and key challenges of TMCs through a combination of computational and experimental approaches. Three kinds of modification strategies, including multi‐scale structure construction, fabrication of TMC‐based composite, and interfacial engineering, along with their working mechanisms on promoting the reversible conversion reaction of TMCs, are comprehensively elucidated. Finally, the current general design principle for compositional reversible TMC electrodes in AMIBs is summarized, while future research opportunities are discussed. This perspective provides fundamental and instructive insights for rational design and synthesis of highly reversible electrodes in conversion‐type batteries.

Article Details

Volume / Issue Vol. 38, Issue 2
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

T

Tongfeng Liu

Zhongda Hospital, School of Life Sciences and Technology, Advanced Institute for Life and Health, Southeast University

Y

Yirun Wang

School of Materials Science and Engineering Tianjin Key Laboratory of Composite and Functional Materials Tianjin University Tianjin 300350 P. R. China

J

Jingwen Zhou

College of Science

G

Guangxuan Wu

School of Energy (National Industry‐Education Platform for Energy Storage) School of Materials Science and Engineering and Tianjin Key Laboratory of Composite and Functional Materials Tianjin University Tianjin People's Republic of China

B

Biao Chen

Department of Chemical Physics, School of Chemistry and Materials Science, Hefei National Research Center for Physical Sciences at the Microscale

G

Guangmin Zhou

F

Fang He

C

Chunnian He

W

Wenbin Hu

N

Naiqin Zhao

N

Ningning Wu

Beijing National Laboratory for Molecular Sciences Organic Solids Laboratory Institute of Chemistry Chinese Academy of Sciences Beijing China