High Energy Density Heterostructured Sodium Layered Oxide Cathodes Enabled by Mechanical‐Chemical Coupling Effect

L Ling‐Yi Kong (State Key Laboratory of Natural Medicines Basic Medical Research Innovation Center for Anti‐Cancer Drugs (Ministry of Education of China) and Jiangsu Key Laboratory of Bioactive Natural Product Research China Pharmaceutical University Nanjing People's Republic of China) Z Zhi‐Qi Li (College of Chemistry and Materials Engineering Wenzhou University Wenzhou 325035 P.R. China) H Han‐Xiao Liu (College of Chemistry and Materials Engineering Wenzhou University Wenzhou 325035 P.R. China) X Xue‐Yan Li (Department of Thermal Science and Energy Engineering University of Science and Technology of China Hefei 230026 P.R. China) Y Yan‐Fang Zhu (College of Chemistry and Materials Engineering Wenzhou University Wenzhou P. R. China) J Jia‐Yang Li (College of Chemistry and Materials Engineering Wenzhou University Wenzhou P. R. China) P Peng Tan M Mei Yang (College of Chemistry) J Jian‐Feng Mao (School of Chemical Engineering & Advanced Materials University of Adelaide Adelaide SA 5005 Australia) W Wei Kong Pang (Institute for Superconducting and Electronic Materials Australian Institute for Innovative Materials University of Wollongong Innovation Campus North Wollongong NSW 2522 Australia) Y Yao Xiao (School of Chemistry and Chemical Engineering)

Abstract

Abstract Designing cobalt‐free manganese‐based oxide cathode materials with high energy density and excellent stability is of great significance and a challenge. Here, we construct a P2/O3 core–shell heterostructured layered oxide cathode material with a mechanical‐chemical coupling effect to achieve precise structural modulation and superior electrochemical performance. Using O3‐NaNi 0.4 Fe 0.2 Mn 0.4 O 2 as the core material, the P2/O3 core–shell heterostructured cathode was obtained by accurately regulating the epitaxial layer. Benefiting from the synergistic effect of the O3 bulk phase and P2 shell layer, this heterostructured cathode shows a high energy density (587.34 Wh·kg −1 , based on cathode active materials), excellent structure, superior air stability, and full cell performance. The phase transition mechanism of the cathode as well as the atomic arrangement characteristics were analyzed by in situ X‐ray diffraction and spherical aberration‐corrected scanning transmission electron microscopy (STEM), respectively. Most importantly, it was verified using stress simulation calculations that the P2 shell layer can share the mechanical stress of the internal O3 bulk phase on a micro‐scale, suppressing the plastic yielding and structural degradation of the material during electrochemical processes, and dramatically enhancing the structural stability. The heterostructured cathode with the mechanical‐chemical coupling effect designed in this study will provide new insights for the optimization of other electrode materials.

Article Details

Volume / Issue Vol. 64, Issue 51
Published December 15, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

L

Ling‐Yi Kong

State Key Laboratory of Natural Medicines Basic Medical Research Innovation Center for Anti‐Cancer Drugs (Ministry of Education of China) and Jiangsu Key Laboratory of Bioactive Natural Product Research China Pharmaceutical University Nanjing People's Republic of China

Z

Zhi‐Qi Li

College of Chemistry and Materials Engineering Wenzhou University Wenzhou 325035 P.R. China

H

Han‐Xiao Liu

College of Chemistry and Materials Engineering Wenzhou University Wenzhou 325035 P.R. China

X

Xue‐Yan Li

Department of Thermal Science and Energy Engineering University of Science and Technology of China Hefei 230026 P.R. China

Y

Yan‐Fang Zhu

College of Chemistry and Materials Engineering Wenzhou University Wenzhou P. R. China

J

Jia‐Yang Li

College of Chemistry and Materials Engineering Wenzhou University Wenzhou P. R. China

P

Peng Tan

M

Mei Yang

College of Chemistry

J

Jian‐Feng Mao

School of Chemical Engineering & Advanced Materials University of Adelaide Adelaide SA 5005 Australia

W

Wei Kong Pang

Institute for Superconducting and Electronic Materials Australian Institute for Innovative Materials University of Wollongong Innovation Campus North Wollongong NSW 2522 Australia

Y

Yao Xiao

School of Chemistry and Chemical Engineering