Grain‐Oriented Dissolution Enabled by Hydrogel for Highly Reversible Zn Anodes

Z Zixing Dong (Institute of Energy Materials Science (IEMS) University of Shanghai for Science and Technology Shanghai P. R. China) S Shige Wang J Jiashu Chen Q Qianwei Huang (Institute of Energy Materials Science) H Haoqing Ji J Jun Peng (State Key Laboratory of Physical Chemistry of Solid Surfaces, Department of Chemistry) H Huakun Liu J Jingyu Sun (Bio-X Institutes, Key Laboratory for the Genetics of Development and Neuropsychiatric Disorders (Ministry of Education), Center for Brain Health and Brain Technology, Global Institute of Future Technology, Institute of Psychology and Behavioral Science, Shanghai Jiao Tong University) S Shixue Dou L Lizhi Xu Z Zaiping Guo (Department of Materials Science and Engineering) C Chao Wu X Xianzhong Yang

Abstract

ABSTRACT The reversibility of Zn anodes is severely compromised by dendritic growth and parasitic hydrogen evolution reactions. Directing Zn to undergo grain‐oriented stripping offers an effective approach to mitigating these issues. However, this strategy has rarely been explored, and the underlying mechanism remains unclear. Herein, we design a multifunctional hydrogel composed of aramid nanofiber‐polyvinyl alcohol (ANF‐PVA) and calcium lignosulfonate (LS) to dynamically regulate the anode interface. The ANF‐PVA hydrogel framework possesses excellent mechanical stability and a uniform porous structure that promotes a homogeneous electric field distribution. Concurrently, the incorporated LS preferentially adsorbs onto specific Zn crystal planes, which equilibrates the stripping energy barrier. Through the synergistic regulation between ANF‐PVA and LS, grain‐oriented dissolution is achieved. The in situ formed solid electrolyte interphase (SEI) can further guide uniform Zn deposition and effectively suppress side reactions. Consequently, Zn||Zn symmetric cells exhibit exceptional cycling stability under both ambient (5000 h at 2 mA cm −2 /1 mAh cm −2 ) and low‐temperature conditions (10 900 h at −40 °C). The Zn||I 2 full cell achieves 78.2% capacity retention after 20 000 cycles at 5 A g −1 . Remarkably, pouch‐type cells also sustain 700 cycles. This work opens a new avenue for achieving highly reversible Zn anodes through grain‐oriented dissolution.

Article Details

Volume / Issue Vol. 65, Issue 26
Published June 22, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

Z

Zixing Dong

Institute of Energy Materials Science (IEMS) University of Shanghai for Science and Technology Shanghai P. R. China

S

Shige Wang

J

Jiashu Chen

Q

Qianwei Huang

Institute of Energy Materials Science

H

Haoqing Ji

J

Jun Peng

State Key Laboratory of Physical Chemistry of Solid Surfaces, Department of Chemistry

H

Huakun Liu

J

Jingyu Sun

Bio-X Institutes, Key Laboratory for the Genetics of Development and Neuropsychiatric Disorders (Ministry of Education), Center for Brain Health and Brain Technology, Global Institute of Future Technology, Institute of Psychology and Behavioral Science, Shanghai Jiao Tong University

S

Shixue Dou

L

Lizhi Xu

Z

Zaiping Guo

Department of Materials Science and Engineering

C

Chao Wu

X

Xianzhong Yang