Proton‐Switching Regulates Interfacial Iodine Chemistry for Long‐Life Zinc–Iodine Batteries

F Feifei Wang G Guoqin Liu (Faculty of Chemistry and Food Chemistry & Center for Advancing Electronics Dresden (CFAED)) Y Yuhang Zhuang P Peng Zhang Z Zhengwei Li S Songshan Bi (Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), Haihe Laboratory of Sustainable Chemical Transformations, College of Chemistry) A Ahmad Bagheri A Angelika Wrzesińska‐Lashkova (Chair for Emerging Electronic Technologies Technische Universität Dresden Dresden Germany) N Neda Kargarfard (Max Planck Institute For Microstructure Physics Halle (Saale) Germany) P Peyman Rostami (Leibniz Institute of Polymer Research Dresden (IPF) Institute of Physical Chemistry and Polymer Physics Dresden Germany) Y Yana Vaynzof (Chair for Emerging Electronic Technologies) B Bernd Plietker M Mingchao Wang (Max Planck Institute of Microstructure Physics) A Ali Shaygan Nia (Max Planck Institute For Microstructure Physics Halle (Saale) Germany) X Xinliang Feng

Abstract

ABSTRACT Aqueous zinc–iodine (Zn–I 2 ) batteries are promising candidates for safe and cost‐effective energy storage, yet their practical application is limited by uncontrolled iodine speciation at electrified interfaces, driving severe polyiodide shuttling and parasitic reactions that cause rapid capacity fading. Existing strategies predominantly rely on static confinement or adsorption, which cannot adapt to evolving iodine speciation during charge–discharge, causing a trade‐off between shuttle suppression and redox kinetics. In this study, we report a proton‐switching strategy that regulates interfacial iodine chemistry via electrochemically driven protonation–deprotonation within an imine‐linked two‐dimensional polymer framework, thereby dynamically rewiring interfacial electrostatics during cycling. During discharge, protonation of imine generates positively polarized C═NH + sites that stabilize I − through electrostatic interactions, enabling controlled reduction of polyiodides without accumulation. Upon charging, deprotonation restores the neutral framework, favoring polyiodide stabilization and efficient iodine oxidation. As a result, the constructed Zn–I 2 battery delivers 51 000 cycles at 20 A g −1 at 25°C and sustains over 70 000 cycles at −20°C. This durability is retained at a high iodine loading of 35.7 mg cm −2 , delivering an areal capacity of 5 mAh cm −2 over 2000 cycles with negligible decay, placing this system among the most durable Zn–I 2 batteries.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 05, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (15)

F

Feifei Wang

G

Guoqin Liu

Faculty of Chemistry and Food Chemistry & Center for Advancing Electronics Dresden (CFAED)

Y

Yuhang Zhuang

P

Peng Zhang

Z

Zhengwei Li

S

Songshan Bi

Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), Haihe Laboratory of Sustainable Chemical Transformations, College of Chemistry

A

Ahmad Bagheri

A

Angelika Wrzesińska‐Lashkova

Chair for Emerging Electronic Technologies Technische Universität Dresden Dresden Germany

N

Neda Kargarfard

Max Planck Institute For Microstructure Physics Halle (Saale) Germany

P

Peyman Rostami

Leibniz Institute of Polymer Research Dresden (IPF) Institute of Physical Chemistry and Polymer Physics Dresden Germany

Y

Yana Vaynzof

Chair for Emerging Electronic Technologies

B

Bernd Plietker

M

Mingchao Wang

Max Planck Institute of Microstructure Physics

A

Ali Shaygan Nia

Max Planck Institute For Microstructure Physics Halle (Saale) Germany

X

Xinliang Feng