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◆ ACS Applied Materials & Interfaces2025-12-19· Materials science

Environment-Tolerant and Ultra-Tough Hydrogel for Wearable Strain Sensors in Human Motion Monitoring

Hanzhi Zhang, Peng Liu, Shanshan Guan, Daishuang Zhang, Ning Tang, Hui Li, Zhuo Li, Yaxin Gu, X. Y. Shan

原始摘要(英文原文)· Original abstract
In this study, we developed a novel environment-tolerant ultra-tough hydrogel-based flexible sensing material through a photopolymerization cross-linking strategy combining metal ion coordination bonds, the Hofmeister effect, and solvent exchange. The resulting poly(vinyl alcohol)/acrylic acid/zirconium oxychloride/gelatin/glycerol (PAZrGG) hydrogel exhibited an outstanding tensile strength of 12.77 MPa, elongation at break of 476.05%, toughness of 39.69 MJ/m 3, compressive strength of 23.78 MPa, and electrical conductivity of 0.36 S/m. Furthermore, the PAZrGG hydrogel displayed superior moisture retention, antiswelling behavior, as well as freeze resistance and high-temperature stability. Additionally, the PAZrGG hydrogel-based sensor exhibited good linear response over a wide strain range (0–80% tensile strain, 5–50% compression), excellent cyclic stability (>1000 cycles), and rapid dynamic response (∼250 ms). Additionally, the sensor provided real-time, high-precision monitoring of diverse human joint movements, ranging from finger and wrist motions to elbow and knee movements. This study provides a new and effective strategy for designing high-performance tough hydrogels, paving the way for next-generation flexible electronics and wearable sensing technologies.
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