Unveiling the Origin of Oxygen Framework Stability in Ultra‐High Nickel Layered Oxide Cathodes

F Fangyan Liu S Shihao Li (Biotechnology Research Institute, Chinese Academy of Agricultural Sciences) C Chihon Leung (Department of Physics JC STEM Lab of Energy and Materials Physics City University of Hong Kong Hong Kong 999077 P. R. China) X Xiaozhi Jiang (Department of Materials Science and Engineering) H Han Liu (Department of Chemistry, State Key Laboratory of Synthetic Chemistry, The University of Hong Kong, Pokfulam Road, Hong Kong SAR 999077, P. R. China) T Tianyi Li (X-ray Science Division, Advanced Photon Sources) Q Qi Liu G Gang Sun Z Zhenbo Wang (Key Laboratory of Regional Sustainable Development Modeling, Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of Sciences) Z Zhian Zhang (School of Metallurgy and Environment Hunan Province Key Laboratory of Nonferrous Value‐Added Metallurgy Central South University Changsha Hunan 410083 P. R. China) Y Yanqing Lai Y Yang Ren J Jiayi Yang

Abstract

Abstract Ultra‐high nickel layered oxides are recognized as promising cathode candidates for high‐energy‐density lithium‐ion batteries due to their enhanced overall capacity and elevated operating voltage. However, the interlayer sliding of transition metal‐oxygen octahedra (TMO6) and the instability of lattice oxygen at high voltages for ultra‐high nickel oxide cathodes pose significant challenges to their development. Herein, the origin of oxygen framework stability is investigated by incorporating high‐covalent element Mo in both bulk and surface using a one‐step integrated method for ultra‐high nickel cathode material LiNi 0.92 Co 0.08 O 2 . It is revealed that apart from the isolation and protection effect of the Mo‐enriched surface layer, the suppression of Li/Ni antisite defects by Mo 6+ with strong covalency in the bulk plays a critical role in reducing the configurations of the activated anionic redox reaction and stabilizing the lattice oxygen and oxygen framework structure. Benefiting from this, the reversibility of anionic redox reaction and the stability of oxygen framework is significantly enhanced, enabling more oxidized oxygen to exist in the form of oxygen dimer ions rather than being lost as gaseous O 2 . Consequently, the modified ultra‐high nickel material demonstrates improved diffusion kinetics and optimized electrochemical performance at high voltage.

Article Details

Volume / Issue Vol. 37, Issue 15
Published April 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (13)

F

Fangyan Liu

S

Shihao Li

Biotechnology Research Institute, Chinese Academy of Agricultural Sciences

C

Chihon Leung

Department of Physics JC STEM Lab of Energy and Materials Physics City University of Hong Kong Hong Kong 999077 P. R. China

X

Xiaozhi Jiang

Department of Materials Science and Engineering

H

Han Liu

Department of Chemistry, State Key Laboratory of Synthetic Chemistry, The University of Hong Kong, Pokfulam Road, Hong Kong SAR 999077, P. R. China

T

Tianyi Li

X-ray Science Division, Advanced Photon Sources

Q

Qi Liu

G

Gang Sun

Z

Zhenbo Wang

Key Laboratory of Regional Sustainable Development Modeling, Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of Sciences

Z

Zhian Zhang

School of Metallurgy and Environment Hunan Province Key Laboratory of Nonferrous Value‐Added Metallurgy Central South University Changsha Hunan 410083 P. R. China

Y

Yanqing Lai

Y

Yang Ren

J

Jiayi Yang