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Updated: Sep 26, 2026

Evaluating the Electrochemical Properties of Supercapacitors using the Three-Electrode System
Published on: January 7, 2022
Stretchable, Wide-Temperature Gel Electrolytes Integrating Ionic Conduction and Heat Buffering for Flexible
Xiaojun Tang1, Xiangshi Ma2, Tingwei Wang2
1School of Materials Science and Engineering, Wuhan University of Technology, Wuhan430063, China.
Abstract:
Traditional hydrogel electrolytes face multiple challenges in flexible energy storage applications, including poor mechanical properties, low ionic conductivity, and failure under extreme temperatures. Herein, this study designs and fabricates a composite gel electrolyte based on polyacrylic acid (PAA), cellulose nanofibers (CNF), and choline chloride (ChCl)/ethylene glycol (EG)/water. The CNF network provides mechanical support and ion transport channels, while an appropriate amount of EG constructs a reversible hydrogen bonding network, endowing the gel with excellent mechanical properties (fracture energy of 218.43 kPa at 780% strain), interfacial adhesion (37.41 kPa on NF and 14.8 kPa on CC), and ionic conductivity (37.93 mS cm-1). The high boiling point and abundant hydroxyl groups of EG impart the gel with outstanding water retention, flame resistance, and adequate self-healing properties and synergize with ChCl to confer good low-temperature adaptability. The flexible symmetric supercapacitor assembled based on this gel exhibits a wide voltage window (0-1.6 V) and excellent cycling stability (92.84% after 6000 cycles) and can operate normally within a temperature range of -20 to 60 °C. More importantly, owing to its high specific heat capacity, the gel possesses dual functionality of "ionic conductivity and thermal management", significantly suppressing the temperature rise during battery charge/discharge processes. This work provides a novel electrolyte fabrication strategy for developing next-generation flexible energy storage devices with high performance, a wide temperature range, and thermal management capability.
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