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Updated: Jun 19, 2026

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A Piezoionic Hydrogel-Based Electrochemical Strain Sensor for Self-Powered Pulse Monitoring and Machine
Feng Li1, Weigong Huang1, Sijie Xie1
1National-Regional Key Technology Engineering Laboratory for Medical Ultrasound, Guangdong Key Laboratory of Biomedical Measurements and Ultrasound Imaging, School of Biomedical Engineering, Shenzhen University Medical School, Shenzhen University, Shenzhen 518060, China.
Abstract:
Hydrogel-based strain sensors are attractive for wearable electronics owing to their stretchability, self-healing, and biocompatibility. However, conventional hydrogel-based strain sensors relying on the piezoresistive effect suffer from limited sensitivity to small forces. Here, we present an ultrasensitive hydrogel-based strain sensor that operates on a piezoionic response mechanism for electrochemical measurement. The hydrogel exhibits a Young's modulus of ∼45 kPa, enabling high sensitivity to subtle forces, while its low residual strain (2.6%) and hysteresis (2.5%) ensure excellent elasticity and stability under cyclic loading. Moreover, 741% enhancement in the piezoionic coefficient of the hydrogel was achieved with a 10% increase in water content. Notably, the sensor demonstrates self-powered characteristics, a fast response time (40 ms), a short decay time (90 ms) at room temperature, and a high gauge factor of 1242. These features enable high-resolution dynamic strain detection, demonstrated by capturing detailed pulse waveforms across arterial sites, exercise states, and breath-holding, as well as achieving 96.3% accuracy in machine learning-assisted speech recognition through precise laryngeal monitoring. This work provides a new strategy for highly efficient dynamic strain detection and has broad potential for health monitoring and human-machine interfaces.
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