Spatially Selective Substitution for Structural Stabilization of Sodium Layered Oxide Cathodes

H Hai‐Yan Hu (College of Chemistry and Materials Engineering Wenzhou University Wenzhou P. R. China) M Minwen Yang (School of Materials Sun Yat‐sen University Shenzhen 518107 P.R. China) D Diancheng Chen (School of Materials Sun Yat‐sen University Shenzhen P. R. China) N Neng‐Hua Xu (Zhejiang Provincial Key Laboratory of Advanced Battery Materials and Technology Wenzhou University Technology Innovation Institute for Carbon Neutralization Wenzhou 325035 P.R. China) J Jia‐Yang Li (College of Chemistry and Materials Engineering Wenzhou University Wenzhou P. R. China) Y Yan‐Fang Zhu (College of Chemistry and Materials Engineering Wenzhou University Wenzhou P. R. China) Y Yuan‐Bo Wu (College of Chemistry and Materials Engineering Wenzhou University Wenzhou 325035 P.R. China) H Hang‐Hang Dong (Zhejiang Provincial Key Laboratory of Advanced Battery Materials and Technology Wenzhou University Technology Innovation Institute for Carbon Neutralization Wenzhou 325035 P.R. China) J Jiayi Wang C Changjiang Yao (College of Chemistry and Materials Engineering Wenzhou University Wenzhou 325035 P.R. China) Y Yaping Yan (Key Laboratory for Medicinal Resources and Natural Pharmaceutical Chemistry, Ministry of Education, College of Life Sciences, Shaanxi Normal University) S Shuangqiang Chen (College of Chemistry and Materials Engineering Wenzhou University Wenzhou 325035 P.R. China) N Nana Wang 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 Yang Sun J Jia‐Zhao Wang (Zhejiang Provincial Key Laboratory of Advanced Battery Materials and Technology Wenzhou University Technology Innovation Institute for Carbon Neutralization Wenzhou 325035 P.R. China) Y Yao Xiao (School of Chemistry and Chemical Engineering)

Abstract

Abstract O3‐type layered transition metal oxides are considered promising cathode materials for sodium‐ion batteries (SIBs) due to their high capacity and favorable Na + storage characteristics. However, their practical application is severely hindered by structural instability associated with multiphase transitions during electrochemical cycling. Herein, we propose a spatially selective multi‐element substitution strategy that induces spatially differentiated distributions of Mg, Cu, Ti, and B, thereby enhancing structural robustness. This spatially differentiated substitution architecture synergistically improves structural stability by concurrently inhibiting interfacial degradation and strengthening the lattice framework. The optimized composition (NaNi 0.4 Mg 0.05 Cu 0.05 Mn 0.3 Ti 0.2 B 0.05 O 2 ) enables a stabilized O3 → P3 phase transition, which relieves lattice distortion and suppresses structural collapse upon cycling. Density functional theory (DFT) analysis reveals that the strong covalency of B─O bonds is crucial for anchoring the P3 framework. Hence, it delivers superior high‐temperature performance in half cells and durable cycling in full cells (85% capacity retention after 300 cycles at 0.5 C within 1.9–3.9 V). By elucidating the role of spatially selective substitution in structural stabilization, this work provides fundamental insights and paves the way for the design of advanced SIB cathodes.

Article Details

Volume / Issue Vol. 65, Issue 1
Published January 02, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (17)

H

Hai‐Yan Hu

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

M

Minwen Yang

School of Materials Sun Yat‐sen University Shenzhen 518107 P.R. China

D

Diancheng Chen

School of Materials Sun Yat‐sen University Shenzhen P. R. China

N

Neng‐Hua Xu

Zhejiang Provincial Key Laboratory of Advanced Battery Materials and Technology Wenzhou University Technology Innovation Institute for Carbon Neutralization Wenzhou 325035 P.R. China

J

Jia‐Yang Li

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

Y

Yan‐Fang Zhu

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

Y

Yuan‐Bo Wu

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

H

Hang‐Hang Dong

Zhejiang Provincial Key Laboratory of Advanced Battery Materials and Technology Wenzhou University Technology Innovation Institute for Carbon Neutralization Wenzhou 325035 P.R. China

J

Jiayi Wang

C

Changjiang Yao

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

Y

Yaping Yan

Key Laboratory for Medicinal Resources and Natural Pharmaceutical Chemistry, Ministry of Education, College of Life Sciences, Shaanxi Normal University

S

Shuangqiang Chen

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

N

Nana Wang

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

Yang Sun

J

Jia‐Zhao Wang

Zhejiang Provincial Key Laboratory of Advanced Battery Materials and Technology Wenzhou University Technology Innovation Institute for Carbon Neutralization Wenzhou 325035 P.R. China

Y

Yao Xiao

School of Chemistry and Chemical Engineering