In Situ Room‐Temperature Spontaneous Gelation Coupled with Asymmetric Viologen for High‐Performance Electrochromic Devices

J Jun Zhang L Liang Tang L Long Zhao (Key Laboratory of Evolution and Marine Biodiversity (Ministry of Education) and Institute of Evolution and Marine Biodiversity, Ocean University of China, Qingdao, China.) Y Yangchao Zeng (College of Materials Science and Engineering State Key Laboratory of Advanced Design and Manufacturing Technology for Vehicle Hunan University Changsha China) Z Zujian Lai (College of Materials Science and Engineering State Key Laboratory of Advanced Design and Manufacturing Technology for Vehicle Hunan University Changsha China) X Xinwang Li J Jiayin Chen X Xiaoqing Yang G Gai Zhao Y Yan Zhang S Shiguo Zhang

Abstract

ABSTRACT The inherent trade‐off between performance and safety in traditional liquid and all‐solid‐state electrolytes poses significant challenges to the commercialization of electrochromic devices. To address these issues, this study developed a high‐performance semi‐interpenetrating polymer network ionic gel electrolyte made of poly(1,3‐dioxolane) and poly(methyl methacrylate). Using a lithium bis(trifluoromethanesulfonyl)imide‐trifluoroacetic acid co‐initiation system, the precursor undergoes efficient in situ ring‐opening polymerization and spontaneous curing at room temperature, without requiring external stimuli (e.g., heating or light irradiation) or solvent evaporation. This approach ensures complete wetting of the electrode surface, streamlining the fabrication process and facilitating scalable device fabrication. The gel electrolyte achieves an impressive ionic conductivity of up to 3.32 mS cm −1 . When paired with a specially designed asymmetric viologen compound, the electrochromic device exhibits superior overall performance, characterized by high optical contrast and exceptional cycling stability, even outperforming conventional organic liquid‐electrolyte systems. This work presents a synergistic strategy that integrates spontaneous in situ gelation with molecular engineering, offering a promising pathway toward next‐generation electrochromic devices.

Article Details

Volume / Issue Vol. 38, Issue 19
Published April 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

J

Jun Zhang

L

Liang Tang

L

Long Zhao

Key Laboratory of Evolution and Marine Biodiversity (Ministry of Education) and Institute of Evolution and Marine Biodiversity, Ocean University of China, Qingdao, China.

Y

Yangchao Zeng

College of Materials Science and Engineering State Key Laboratory of Advanced Design and Manufacturing Technology for Vehicle Hunan University Changsha China

Z

Zujian Lai

College of Materials Science and Engineering State Key Laboratory of Advanced Design and Manufacturing Technology for Vehicle Hunan University Changsha China

X

Xinwang Li

J

Jiayin Chen

X

Xiaoqing Yang

G

Gai Zhao

Y

Yan Zhang

S

Shiguo Zhang