Operando Magnetism on Oxygen Redox Process in Li‐Rich Cathodes

S Shiyu Qiu (Key Laboratory of Materials Physics Institute of Solid State Physics HFIPS Chinese Academy of Sciences Hefei 230031 P. R. China) J Jin Bai (Department of Cancer Institute, Xuzhou Medical University) P Peiyao Wang (Key Laboratory of Forest Plant Ecology, Ministry of Education, College of Chemistry, Chemical Engineering and Resource Utilization) K Ke Xiao Y Yuanyuan Liu S Siya Wang (Key Laboratory of Materials Physics Institute of Solid State Physics HFIPS Chinese Academy of Sciences Hefei 230031 P. R. China) X Xuebin Zhu (Key Laboratory of Materials Physics, Institute of Solid State Physics, HFIPS, Chinese Academy of Sciences 1 , Hefei 230031,) G Guohua Zhong (Key Laboratory of Crop Integrated Pest Management in South China, Ministry of Agriculture, Department of Pesticide Science, College of Plant Protection, South China Agricultural University) Q Qiang Li B Bangchuan Zhao (Key Laboratory of Materials Physics Institute of Solid State Physics HFIPS Chinese Academy of Sciences Hefei 230031 P. R. China) Y Yuping Sun (Key Laboratory of Materials Physics, Institute of Solid State Physics, HFIPS)

Abstract

AbstractOxide ions in lithium‐rich layered oxides can store charge at high voltage and offer a viable route toward the higher energy density batteries. However, the underlying oxygen redox mechanism in such materials still remains elusive at present. In this work, a precise in situ magnetism measurement is employed to monitor real‐time magnetization variation associated with unpaired electrons in Li1.2Mn0.6Ni0.2O2 cathode material, enabling the investigation on magnetic/electronic structure evolution in electrochemical cycling. The magnetization gradually decreases except for a weak upturn above 4.6 V during the initial charging process. According to the comprehensive analyses of various in/ex situ characterizations and density functional theory (DFT) calculations, the magnetization rebound can be attributed to the interaction evolution of lattice oxygen from π‐type delocalized Mn─O coupling to σ‐type O─O dimerization bonding. Moreover, the magnetization amplitude attenuation after long‐term cycles provides important evidence for the irreversible structure transition and capacity fading. The oxygen redox mechanism concluded by in situ magnetism characterization can be generalized to other electrode materials with an anionic redox process and provide pivotal guidance for designing advanced high‐performance cathode materials.

Article Details

Volume / Issue Vol. 37, Issue 18
Published May 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

S

Shiyu Qiu

Key Laboratory of Materials Physics Institute of Solid State Physics HFIPS Chinese Academy of Sciences Hefei 230031 P. R. China

J

Jin Bai

Department of Cancer Institute, Xuzhou Medical University

P

Peiyao Wang

Key Laboratory of Forest Plant Ecology, Ministry of Education, College of Chemistry, Chemical Engineering and Resource Utilization

K

Ke Xiao

Y

Yuanyuan Liu

S

Siya Wang

Key Laboratory of Materials Physics Institute of Solid State Physics HFIPS Chinese Academy of Sciences Hefei 230031 P. R. China

X

Xuebin Zhu

Key Laboratory of Materials Physics, Institute of Solid State Physics, HFIPS, Chinese Academy of Sciences 1 , Hefei 230031,

G

Guohua Zhong

Key Laboratory of Crop Integrated Pest Management in South China, Ministry of Agriculture, Department of Pesticide Science, College of Plant Protection, South China Agricultural University

Q

Qiang Li

B

Bangchuan Zhao

Key Laboratory of Materials Physics Institute of Solid State Physics HFIPS Chinese Academy of Sciences Hefei 230031 P. R. China

Y

Yuping Sun

Key Laboratory of Materials Physics, Institute of Solid State Physics, HFIPS