Suppressing Electric‐Field‐Induced Cathodic Salt Crystallization for Stable Zinc‐Ion Batteries

Z Zhejian Yi (Engineering Research Center of Environment‐Friendly Functional Materials Ministry of Education School of Materials Science and Engineering Huaqiao University Xiamen China) C Chenxi Luo (Department of Chemical and Biomolecular Engineering National University of Singapore Singapore 117585 Republic of Singapore) H Hainan Wang (Engineering Research Center of Environment‐Friendly Functional Materials Ministry of Education School of Materials Science and Engineering Huaqiao University Xiamen China) N Ninggui Ma (Department of Materials Science and Engineering, City University of Hong Kong, 83 Tat Chee Avenue, Kowloon, Hong Kong 999077, China) Y Yiming Xie J Jihuai Wu (Engineering Research Center of Environment‐Friendly Functional Materials Ministry of Education Fujian Provincial Key Laboratory of Photoelectric Functional Materials Institute of Materials Physical Chemistry Huaqiao University Xiamen 361021 China) Z Zhang Lan (Engineering Research Center of Environment‐Friendly Functional Materials Ministry of Education Fujian Provincial Key Laboratory of Photoelectric Functional Materials Institute of Materials Physical Chemistry Huaqiao University Xiamen 361021 China) F Fuda Yu (Engineering Research Center of Environment‐Friendly Functional Materials, Ministry of Education Fujian Key Laboratory of Photoelectric Functional Materials College of Materials Science and Engineering Huaqiao University Xiamen Fujian 361021 China) L Lanfang Que (Engineering Research Center of Environment‐Friendly Functional Materials Ministry of Education School of Materials Science and Engineering Huaqiao University Xiamen China) L Liguang Wang (College of Chemical and Biological Engineering)

Abstract

ABSTRACT Aqueous zinc‐ion batteries (AZIBs) hold promise for sustainable energy storage but suffer rapid capacity decay, particularly at subzero conditions. Beyond cathode instability and side reactions, we unveil an interfacial failure pathway: electric‐field‐induced phase separation that triggers catastrophic interfacial salt crystallization (CISC). The insulating crystalline layer rapidly engulfs the cathode, precipitating accelerated degradation. Mechanistic studies pinpoint solvent depletion and anion enrichment within the electric double layer as the origin of CISC. Molecular dynamics simulations and experimental observations demonstrate that sulfolane (TS) disrupts interfacial ion ordering, elevates the crystallization barrier, and thereby effectively suppresses CICS. This strategy stabilizes the cathode structure, enhances zinc availability, facilitates the V 2 O 5 activation phase transition, increases the Zn 2+ transference number, and promotes uniform Zn 2+ deposition. Consequently, V 2 O 5 ||Zn batteries display remarkable stability, retaining 378.9 mAh g −1 after 300 cycles at room temperature and sustaining nearly invariant capacity over 20 000 cycles at −20°C. These findings expose interfacial salt crystallization as a critical failure pathway in AZIBs and provide a molecular‐level design strategy for electrolyte engineering.

Article Details

Volume / Issue Vol. 38, Issue 10
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

Z

Zhejian Yi

Engineering Research Center of Environment‐Friendly Functional Materials Ministry of Education School of Materials Science and Engineering Huaqiao University Xiamen China

C

Chenxi Luo

Department of Chemical and Biomolecular Engineering National University of Singapore Singapore 117585 Republic of Singapore

H

Hainan Wang

Engineering Research Center of Environment‐Friendly Functional Materials Ministry of Education School of Materials Science and Engineering Huaqiao University Xiamen China

N

Ninggui Ma

Department of Materials Science and Engineering, City University of Hong Kong, 83 Tat Chee Avenue, Kowloon, Hong Kong 999077, China

Y

Yiming Xie

J

Jihuai Wu

Engineering Research Center of Environment‐Friendly Functional Materials Ministry of Education Fujian Provincial Key Laboratory of Photoelectric Functional Materials Institute of Materials Physical Chemistry Huaqiao University Xiamen 361021 China

Z

Zhang Lan

Engineering Research Center of Environment‐Friendly Functional Materials Ministry of Education Fujian Provincial Key Laboratory of Photoelectric Functional Materials Institute of Materials Physical Chemistry Huaqiao University Xiamen 361021 China

F

Fuda Yu

Engineering Research Center of Environment‐Friendly Functional Materials, Ministry of Education Fujian Key Laboratory of Photoelectric Functional Materials College of Materials Science and Engineering Huaqiao University Xiamen Fujian 361021 China

L

Lanfang Que

Engineering Research Center of Environment‐Friendly Functional Materials Ministry of Education School of Materials Science and Engineering Huaqiao University Xiamen China

L

Liguang Wang

College of Chemical and Biological Engineering