Constructing Robust Hydrogen Bond Networks in Electrolytes for Long‐Life Zinc‐Ion Batteries

Z Zuqiao Ou (State Key Laboratory of Catalysis Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 China) M Minjing Zhao (State Key Laboratory of Catalysis Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 China) K Kaiyue Zhu (State Key Laboratory of Catalysis Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 China) Z Zheyi Liu (State Key Laboratory of Chemical Reaction Dynamics) S Shirui Yang (State Key Laboratory of Molecular Reaction Dynamics, CAS Key Laboratory of Separation Sciences for Analytical Chemistry) H Hongyan Zhang F Fangjun Wang (CAS Key Laboratory of Separation Sciences for Analytical Chemistry, Dalian Institute of Chemical Physics) W Weishen Yang (State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, 457 Zhongshan Road, Dalian 116023, P. R. China)

Abstract

Abstract Hydrogen bonding in the aqueous electrolyte of zinc‐ion batteries is a key factor dominating cycling stability due to the corrosive effects of water on both anode and cathode. Herein, we designed a robust, continuous hydrogen‐bond network using ethylene glycol as a cosolvent and sulfate ion (SO 4 2− ) as structure‐making anion. Both hydrogen (H) and oxygen (O) atoms of water and ethylene glycol in the electrolyte are inter‐anchored to mitigate the attack of O on a vanadium‐based cathode and the attack of H on the zinc (Zn) anode. Furthermore, the entry of ethylene glycol into the Zn 2+ solvation structure facilitates Zn 2+ intercalation and improves the reversibility of byproducts arising from H + ‐insertion. As a result, excellent cycling performances was achieved in coin cells, with capacity retentions of 87% after 500 cycles at 0.5 A g −1 and 95% after 150 cycles at 0.2 A g −1 , ranking among the highest cycling stabilities reported to date. Moreover, a pouch cell with an area of 90 cm 2 delivered a substantial capacity of 2 Ah and maintained 80% capacity retention after 70 cycles, highlighting the strong potential for practical scalability.

Article Details

Volume / Issue Vol. 65, Issue 3
Published January 16, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

Z

Zuqiao Ou

State Key Laboratory of Catalysis Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 China

M

Minjing Zhao

State Key Laboratory of Catalysis Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 China

K

Kaiyue Zhu

State Key Laboratory of Catalysis Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 China

Z

Zheyi Liu

State Key Laboratory of Chemical Reaction Dynamics

S

Shirui Yang

State Key Laboratory of Molecular Reaction Dynamics, CAS Key Laboratory of Separation Sciences for Analytical Chemistry

H

Hongyan Zhang

F

Fangjun Wang

CAS Key Laboratory of Separation Sciences for Analytical Chemistry, Dalian Institute of Chemical Physics

W

Weishen Yang

State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, 457 Zhongshan Road, Dalian 116023, P. R. China