Inter‐molecular Channel Gated Ion Migration for High Performance Zinc‐ion Batteries

K Kunjie Zhu (Institute of Energy Materials Science (IEMS) University of Shanghai for Science and Technology Shanghai P. R. China) C Chengfeng Li C Chaotian Ni (Institute of Energy Materials Science (IEMS) University of Shanghai for Science and Technology Shanghai P. R. China) S Suyan Niu X Xiaozhen Ling (Institute of Energy Materials Science (IEMS) University of Shanghai for Science and Technology Shanghai P. R. China) Z Zhongxiang Wu (Institute of Energy Materials Science (IEMS) University of Shanghai for Science and Technology Shanghai P. R. China) X Xiang‐Long Huang (Institute of Energy Materials Science (IEMS) University of Shanghai for Science and Technology Shanghai P. R. China) L Long Yao Q Qi Luo (Guangdong Provincial Key Laboratory of Chinese Medicine Pharmaceutics, School of Traditional Chinese Medicine) H Hua‐Kun Liu (Institute of Energy Materials Science (IEMS) University of Shanghai for Science and Technology Shanghai P. R. China) S Shi‐Xue Dou (Institute of Energy Materials Science (IEMS) University of Shanghai for Science and Technology Shanghai P. R. China) W Wei‐Hong Lai (Laboratory of Advanced Materials Shanghai Key Lab of Molecular Catalysis and Innovative Materials Fudan University Shanghai P. R. China) Y Yun‐Xiao Wang (Institute of Energy Materials Science (IEMS) University of Shanghai for Science and Technology Shanghai P. R. China)

Abstract

ABSTRACT Aqueous zinc‐ion batteries (AZIBs) are plagued by dendrite growth and parasitic side reactions, which severely hinder their stable operation. Inspired by carrier proteins, amphiphilic surfactants are introduced as ion channel mediators. During zinc deposition, the cationic surfactants preferentially adsorb onto the zinc surface through their headgroups and self‐assemble into ordered ion channels, thereby guiding dense and uniform Zn 2+ flux. The ion channeling capability of cationic surfactants with various alkyl chain lengths is systematically investigated. Decyltrimethylammonium chloride, possessing the optimal chain length, is subsequently selected to construct efficient ion channels. Its moderate alkyl length enables the formation of stable ion channels that regulate the electric double layer (EDL) environment and promote directional zinc deposition. Benefiting from the ion‐regulating strategy, Zn||Cu asymmetric cells achieve an average Coulombic efficiency as high as 99.58% over 3000 cycles. Meanwhile, Zn||Zn symmetric cells operate stably for over 800 h under harsh conditions of 10 mA cm −2 with 10 mAh cm −2 . The assembled Zn||VO 2 pouch cell demonstrates impressive cycling stability over 300 cycles. This work provides a new perspective on surfactant‐enabled dendrite suppression and offers a low‐cost and highly effective solution for the practical development of AZIBs.

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 (13)

K

Kunjie Zhu

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

C

Chengfeng Li

C

Chaotian Ni

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

S

Suyan Niu

X

Xiaozhen Ling

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

Z

Zhongxiang Wu

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

X

Xiang‐Long Huang

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

L

Long Yao

Q

Qi Luo

Guangdong Provincial Key Laboratory of Chinese Medicine Pharmaceutics, School of Traditional Chinese Medicine

H

Hua‐Kun Liu

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

S

Shi‐Xue Dou

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

W

Wei‐Hong Lai

Laboratory of Advanced Materials Shanghai Key Lab of Molecular Catalysis and Innovative Materials Fudan University Shanghai P. R. China

Y

Yun‐Xiao Wang

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