Manipulating Interfacial Water Molecules via Eutectic‐Polymer Dual‐Network for Stable Electrochromic Devices

J Jiandong Wan (College of Materials Science and Engineering Hunan University Changsha China) X Xin Tan (Institute for Carbon Neutralization Technology, College of Chemistry and Materials Engineering) C Chaoyang Li M Meiying Leng (School of Physics and Electronics Hunan Normal University Changsha China) X Xuli Chen (College of Materials Science and Engineering Hunan University Changsha China) A Anlian Pan (School of physics and electronics)

Abstract

ABSTRACT Aqueous Zn‐WO 3 electrochromic devices (ZWEDs) represent a promising frontier in energy‐efficient electrochromic systems. However, their practical application is hindered by the short device lifespans due to the poor electrode/electrolyte interfacial stability which originates from high water activity. Herein, we develop a eutectic‐polymer dual‐network electrolyte to regulate water activity and stabilize the electrode/electrolyte interface. Combined in situ/ex situ spectroscopic analysis and simulations reveal that this eutectic‐polymer dual‐network stabilize the electrode structure via two complementary effects: (i) reconstruction of the hydrogen‐bond network confines free water molecules, suppressing water activity and parasitic reactions; and (ii) preferential adsorption of acetamide molecules over water on the electrode surfaces forms a stable molecular interfacial layer that regulates Zn 2+ electrochemical behavior and further mitigates water‐induced side reactions. Benefiting from the synergy between hydrogen‐bond reconstruction and interfacial adsorption, the interfacial stabilities of both Zn anode and WO 3 cathode are significantly enhanced. Consequently, the Zn‐WO 3 device achieves outstanding cyclic stability in both ion storage and optical modulation over 1000 cycles, with an operational temperature range expanded to −30°C∼80°C. This strategy offers a promising pathway to enhance the interfacial stability in ZWEDs across a wide temperature range.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 09, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (6)

J

Jiandong Wan

College of Materials Science and Engineering Hunan University Changsha China

X

Xin Tan

Institute for Carbon Neutralization Technology, College of Chemistry and Materials Engineering

C

Chaoyang Li

M

Meiying Leng

School of Physics and Electronics Hunan Normal University Changsha China

X

Xuli Chen

College of Materials Science and Engineering Hunan University Changsha China

A

Anlian Pan

School of physics and electronics