Empowering Reversible Anionic Redox in Sodium Layered Oxide Cathodes via Ionic Impedance Matching Interphase

Y Yi‐Feng Liu (College of Chemical Engineering Sichuan University Chengdu P. R. China) H Hai‐Yan Hu (College of Chemistry and Materials Engineering Wenzhou University Wenzhou P. R. China) X Xu Zhu (Center of Nanomaterials for Renewable Energy, State Key Laboratory of Electrical Insulation and Power Equipment, School of Electrical Engineering) D Dian‐Cheng Chen (School of Materials SunYat‐sen University Shenzhen 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) P Peng‐Fei Wang (Center of Nanomaterials for Renewable Energy State Key Laboratory of Electrical Insulation and Power Equipment School of Electrical Engineering Xi'an Jiaotong University Xi'an Shaanxi P.R. China) Y Yu‐Bin Niu (School of Materials and Energy Southwest University Chongqing P. R. China) Z Zhen‐Guo Wu (College of Chemical Engineering Sichuan University Chengdu P. R. China) Y Yang Sun X Xiao‐Dong Guo (College of Chemical Engineering Sichuan University Chengdu P. R. China) Y Yao Xiao (School of Chemistry and Chemical Engineering)

Abstract

ABSTRACT Anionic redox reaction (O 2− /O − , ARR) in low‐cost sodium manganese‐based layered oxide cathodes enable high energy density, but often suffer from rapid degradation under high voltages due to interfacial instability. Here, we design an ionic impedance matching interphase to mitigate this challenge by harmonizing mechanical compatibility and ionic transport. The interphase forms as NaTi 2 (PO 4 ) 3 undergoes thermally driven conversion accompanied by ion migration, inducing gradient surface reconstruction on P2‐Na 5/6 Li 1/4 Mn 3/4 O 2 and yielding a composite architecture comprising an outer Na 3 PO 4 and an inner Ti‐rich spinel‐like layer. The spinel‐like layer shows strong lattice compatibility with layered bulk and is anchored to conductive Na 3 PO 4 through robust Ti−O−P linkages, which alleviates internal stress and stabilizes interfacial chemistry, while its intermediate conductivity lowers interfacial resistance. Moreover, this architecture shields electrolyte components from reactive oxygen species, suppresses gas evolution, and introduces lattice‐permeated Ti doping, which reinforces Ti−O covalency to stabilize lattice oxygen and mitigate Jahn−Teller distortion. These synergistic effects yield a stabilized interfacial environment that promotes reversible redox electrochemistry, achieving high discharge capacity (∼ 230 mAh g −1 ) and low voltage decay (<0.05 V) over extended cycling. This work deepens mechanistic insights into interfacial regulation and provides an effective route for stabilizing anionic redox chemistry for high‐energy sodium‐ion batteries.

Article Details

Volume / Issue Vol. 65, Issue 23
Published June 01, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

Y

Yi‐Feng Liu

College of Chemical Engineering Sichuan University Chengdu P. R. China

H

Hai‐Yan Hu

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

X

Xu Zhu

Center of Nanomaterials for Renewable Energy, State Key Laboratory of Electrical Insulation and Power Equipment, School of Electrical Engineering

D

Dian‐Cheng Chen

School of Materials SunYat‐sen University Shenzhen 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

P

Peng‐Fei Wang

Center of Nanomaterials for Renewable Energy State Key Laboratory of Electrical Insulation and Power Equipment School of Electrical Engineering Xi'an Jiaotong University Xi'an Shaanxi P.R. China

Y

Yu‐Bin Niu

School of Materials and Energy Southwest University Chongqing P. R. China

Z

Zhen‐Guo Wu

College of Chemical Engineering Sichuan University Chengdu P. R. China

Y

Yang Sun

X

Xiao‐Dong Guo

College of Chemical Engineering Sichuan University Chengdu P. R. China

Y

Yao Xiao

School of Chemistry and Chemical Engineering