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◆ Materials horizons2026-08-10

A crystalline reinforced dual-network hydrogel for wearable sensing devices.

Yannan Li, Chaolun Xu, Jiaqi Sun, Yifan Pan, Yifei Qiu, Shogo Iwai, Shinjiro Umezu

原始摘要(英文原文)· Original abstract
The rapid development of wearable sensing interfaces urgently requires flexible electronics with high strength, high stretchability, and stable conductivity. This study proposes a multi-stage fabrication strategy to prepare dual-network (DN) hydrogel electrodes. A covalent crosslinked network of poly(acrylic acid-co-sodium acrylate) (P(AA-co-NaAA)) was obtained via digital light processing (DLP) three-dimensional (3D) printing. A crystalline crosslinked network of poly(vinyl alcohol) (PVA) was formed via freeze-thaw cycles and an annealing process. Then, sodium citrate (NaCit) was used as a regulating ion to achieve segment rearrangement and structural reconstruction. By adjusting the PVA content, AA/NaAA molar ratio, and NaCit concentration, the strength and stretchability of the DN hydrogels were significantly enhanced, breaking the traditional trade-off between strength and stretchability in hydrogels. Characterization showed that the multi-stage fabrication continuously increases the content and regularity of the crystalline PVA, and the structure evolves from a loose to dense porous framework. Given the comprehensive mechanical and conductive properties of the resulting material, the optimized formulation, with a PVA content of 9 wt%, AA/NaAA molar ratio of 4 : 1, and NaCit concentration of 0.5 mol L-1, was selected. The resulting hydrogel electrodes exhibited a continuous resistance response over a wide strain window and maintained a stable signal output after 2000 cycles at 50% strain. When integrated into a wearable glove, the hydrogel electrodes transformed finger bending deformation into an electrical signal to drive synchronous movements of a robotic hand, thus demonstrating the application potential of the hydrogel electrodes as wearable sensing interfaces for human-machine interaction.
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A crystalline reinforced dual-network hydrogel for wearable sensing devices. — 科研速览 Science Skim