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Updated: Mar 16, 2026

Controlled Strain of 3D Hydrogels under Live Microscopy Imaging
Published on: December 4, 2020
Highly Flexible, Adhesive, Antimicrobial, and Self-Powered Hydrogel Strain Sensor for Human Motion Monitoring
Yuwei Guo1, Ya Wang2, Heng Wang1
1Hunan Key Laboratory of Biomedical Nanomaterials and Devices, School of Biological Science and Medical Engineering, Hunan University of Technology, Zhuzhou 412007, China.
Abstract:
Piezoelectric hydrogel sensors are a recent innovation that combines the flexibility of hydrogels with the self-powering of piezoelectric materials. Here, we present a self-powered hydrogel strain sensor by incorporating piezoelectric Na0.5Bi0.5TiO3 nanoparticles into a dual-network hydrogel composed of poly(vinyl alcohol), acrylamide, and 2-acrylamido-2-methyl-1-propanesulfonic acid. The hydrogel exhibits excellent mechanical properties, achieving a tensile strength of 1.28 MPa, an elongation at break of 1127%, and strong tissue adhesion (55.97 kPa on porcine skin). The sensor delivers a maximum output voltage of 237.4 mV, a sensitivity of 17.99 mV under small compressive strain, and a broad tensile strain detection range of 30 to 400%. It reliably monitors both subtle physiological activities (facial expression, swallowing, pulse) and large joint movements. Moreover, it exhibits notable antibacterial performance via ultrasound-driven piezocatalysis, reducing bacterial viability to below 1.5%. This tough, adhesive, and antibacterial piezoelectric hydrogel sensor holds significant promise for wearable electronics and human-machine interfaces.

