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Updated: Aug 13, 2026

Microfluidic Channel-Based Soft Electrodes and Their Application in Capacitive Pressure Sensing
Published on: March 17, 2023
Ultra-tough dual-network conductive hydrogel with UV-blocking, antibacterial properties and freeze resistance for
Qiancheng He1, Yujie Xue1, Lili Ren2
1Key Laboratory of Bionic Engineering (Ministry of Education), College of Biological and Agricultural Engineering, College of Bionic Science and Engineering, Jilin University, Changchun 130022, China.
Abstract:
Flexible electronic sensors hold great promise in the fields of wearable health monitoring and human-computer interaction. However, existing hydrogel systems generally suffer from insufficient mechanical strength and limited multifunctional integration. To address these bottlenecks, a self-assembly strategy was employed to fabricate a supramolecular ionic hydrogel based on lignosulfonate (SL) and polyvinyl alcohol (PVA), exploiting the coordination interactions of Zn2+ to construct a PVA/SL/ZnCl2 hydrogel sensor. Owing to the dual network structure of PVA/SL and Zn2+/SL within the supramolecular system, the hydrogel exhibits exceptional mechanical toughness, ensuring reliable and repeatable electrical signal generation across a wide strain range. Specifically, the optimized PVA/SL/ZnCl2 hydrogel exhibits a high tensile strength of 19.8 MPa, a fracture strain of 892%, and excellent toughness of 7.93 MJ/m3, while also demonstrating exceptional freeze resistance down to -38.97 °C, UV-blocking efficiency, broad-spectrum antibacterial activity, and good ionic conductivity (0.83 S/m). As a strain sensor, it demonstrates high sensitivity (Gauge Factor = 0.83), a rapid response time of 252 ms, and excellent long-term durability, enabling precise detection of both large-amplitude joint movements and subtle physiological signals under both ambient and low-temperature conditions. Furthermore, this sensing system was extended to Morse code-encrypted communication and wireless alarm systems for emergency applications in cold outdoor environments. Overall, this work pioneers a new path for the development of next-generation smart sensors. Its outstanding comprehensive performance significantly enhances the application potential of biomass hydrogels in human-machine interaction, smart healthcare, and frigid environment monitoring, offering significant engineering value and socioeconomic benefits.

