Spinel‐Layered Heterostructure Enables Reversible Oxygen Redox in Lithium Manganese Oxide

Y Yanfang Wang (State Key Laboratory of Advanced Drug Delivery and Release Systems, College of Pharmaceutical Sciences) C Cheng Li Y Yulin Cao (Department of Materials Science and Engineering Southern University of Science and Technology Shenzhen 518055 China) J Juping Xu (Institute of High Energy Physics) D Dominic Gardner (School of Chemistry University of Birmingham Edgbaston Birmingham B15 2TT UK) W Wilgner Lima da Silva (School of Chemistry University of Birmingham Edgbaston Birmingham B15 2TT UK) Y Yongcong Huang (Department of Materials Science and Engineering Southern University of Science and Technology Shenzhen 518055 China) F Fangchang Zhang (Department of Materials Science and Engineering Southern University of Science and Technology Shenzhen 518055 China) M Mingzhou Li Y Yingzhi Li W Wen Yin K Kaili Zhang P Phoebe K. Allan (School of Chemistry University of Birmingham Edgbaston Birmingham B15 2TT UK) Z Zhouguang Lu (Guangdong Provincial Key Laboratory of Energy Materials for Electric Power, Department of Materials Science and Engineering)

Abstract

Abstract Lithium‐rich manganese‐based layered oxides (LRMOs) have emerged as promising cathode materials for next‐generation lithium‐ion batteries (LIBs), primarily due to their exceptional capacity originating from oxygen redox chemistry. Although Li 2 MnO 3 (LMO) has been conventionally identified as the oxygen redox‐active component in LRMOs, this layered material shows neither bulk redox activity nor reversible anion redox behavior in the absence of other transition metals (e.g., Ni and Co). Herein, we report a structural‐engineered lithium manganese oxide with spinel‐layered heterostructures (designated as LMO‐SH), which exhibits reversible oxygen redox activities between lattice oxygen (O 2− ) and molecular oxygen (O 2 ) – the first documented instance of such redox behavior in a manganese‐based material. Through combining experimental characterization and theoretical modeling, we establish that the interfacial architecture between the spinel and layered phases facilitates the Li + diffusion kinetics while simultaneously activating bulk oxygen redox processes. This mechanistic understanding not only advances fundamental knowledge of redox chemistry in LMO‐based materials but also establishes new design principles for developing high‐capacity cathodes through strategic phase engineering.

Article Details

Volume / Issue Vol. 64, Issue 36
Published September 01, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (14)

Y

Yanfang Wang

State Key Laboratory of Advanced Drug Delivery and Release Systems, College of Pharmaceutical Sciences

C

Cheng Li

Y

Yulin Cao

Department of Materials Science and Engineering Southern University of Science and Technology Shenzhen 518055 China

J

Juping Xu

Institute of High Energy Physics

D

Dominic Gardner

School of Chemistry University of Birmingham Edgbaston Birmingham B15 2TT UK

W

Wilgner Lima da Silva

School of Chemistry University of Birmingham Edgbaston Birmingham B15 2TT UK

Y

Yongcong Huang

Department of Materials Science and Engineering Southern University of Science and Technology Shenzhen 518055 China

F

Fangchang Zhang

Department of Materials Science and Engineering Southern University of Science and Technology Shenzhen 518055 China

M

Mingzhou Li

Y

Yingzhi Li

W

Wen Yin

K

Kaili Zhang

P

Phoebe K. Allan

School of Chemistry University of Birmingham Edgbaston Birmingham B15 2TT UK

Z

Zhouguang Lu

Guangdong Provincial Key Laboratory of Energy Materials for Electric Power, Department of Materials Science and Engineering