Electronic Cloud Topology‐Driven Electrostatic Decoupling: To Suppress High‐Voltage Parasitic Reactions of Phosphate Cathode in Sodium‐Ion Batteries

H Heng Zhang X Xiao‐Tong Wang (MOE Key Laboratory For UV Light‐Emitting Materials and Technology Northeast Normal University Changchun Jilin P. R. China) W Wen‐Yu Qian (Department of Chemistry Northeast Normal University Changchun Jilin 130024 P.R. China) Z Zhen‐Yi Gu (MOE Key Laboratory For UV Light‐Emitting Materials and Technology Northeast Normal University Changchun Jilin P. R. China) Y Yong‐Li Heng (State Key Laboratory of Integrated Optoelectronics, and MOE Key Laboratory For UV Light‐Emitting Materials and Technology Department of Physics Northeast Normal University Changchun Jilin P. R. China) Y Yan Liu X Xin‐Ru Zhang (MOE Key Laboratory For UV Light‐Emitting Materials and Technology Northeast Normal University Changchun Jilin P. R. China) X Xin‐Yi Zhang (Faculty of Chemistry Northeast Normal University Changchun China) H Hong‐Jie Zhong (Department of Chemistry Northeast Normal University Changchun Jilin P. R. China) N Ning Yu (Department of Chemistry) D Dai‐Huo Liu (School of Chemistry and Chemical Engineering Henan Normal University Xinxiang 453007 P.R. China) X Xing‐Long Wu (MOE Key Laboratory For UV Light‐Emitting Materials and Technology Northeast Normal University Changchun Jilin P. R. China)

Abstract

Abstract The polyanionic structure cathodes with synergistic Mn/V redox couples enables high‐voltage platform and delivers considerable theoretical energy density in sodium‐ion battery. However, achieving stable and reversible high‐voltage redox reactions remain challenging due to the inactivation of redox couples during discharge. Herein, we found that coupled redox behavior triggered by orbitals with similar energy levels leads to high‐voltage irreversibility and parasitic reactions. To overcome this, we propose a strategy of adjusting the electron cloud topology by altering the electrostatic field, thereby changing the orbital energy gap between the t 2g state of V and the e g state of Mn, effectively decoupling the electrochemical reactions. As a model system, the Na 3.5 MnV 0.5 Ti 0.5 (PO 4 ) 3 (NMVTP) cathode significantly stabilizes the high‐voltage Mn 4+/3+ and V 5+/4+ pairs, and increases the reversible capacity from 99.41 to 123.9 mAh g −1 . This strategy opens new paths for developing high‐energy density batteries through orbital bandgap modification.

Article Details

Volume / Issue Vol. 64, Issue 38
Published September 15, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

H

Heng Zhang

X

Xiao‐Tong Wang

MOE Key Laboratory For UV Light‐Emitting Materials and Technology Northeast Normal University Changchun Jilin P. R. China

W

Wen‐Yu Qian

Department of Chemistry Northeast Normal University Changchun Jilin 130024 P.R. China

Z

Zhen‐Yi Gu

MOE Key Laboratory For UV Light‐Emitting Materials and Technology Northeast Normal University Changchun Jilin P. R. China

Y

Yong‐Li Heng

State Key Laboratory of Integrated Optoelectronics, and MOE Key Laboratory For UV Light‐Emitting Materials and Technology Department of Physics Northeast Normal University Changchun Jilin P. R. China

Y

Yan Liu

X

Xin‐Ru Zhang

MOE Key Laboratory For UV Light‐Emitting Materials and Technology Northeast Normal University Changchun Jilin P. R. China

X

Xin‐Yi Zhang

Faculty of Chemistry Northeast Normal University Changchun China

H

Hong‐Jie Zhong

Department of Chemistry Northeast Normal University Changchun Jilin P. R. China

N

Ning Yu

Department of Chemistry

D

Dai‐Huo Liu

School of Chemistry and Chemical Engineering Henan Normal University Xinxiang 453007 P.R. China

X

Xing‐Long Wu

MOE Key Laboratory For UV Light‐Emitting Materials and Technology Northeast Normal University Changchun Jilin P. R. China