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Twisted Conductive Fiber-Based Strain Sensor with High Sensitivity and Wide Working Range for Human Motion
Leyu Dai1, Zhichao Zhou1, Yingjie Chang1
1College of Chemistry, Chemical Engineering and Materials Science, Soochow University, 199 Ren-ai Road, Suzhou 215123, P. R. China.
Abstract:
A strain sensor with high sensitivity and a wide working range is urgently required owing to its potential applications in wearable electronic devices. Nevertheless, high sensitivity, which includes a high gauge factor (GF) and a low detection limit, requires a noticeable structural variation even at a tiny deformation, while a wide working range requires maintaining morphological integrity under a large strain. The contradictory performances lead to a huge challenge to simultaneously acquire the aforementioned comprehensive performance. Herein, we prepared a twisted fiber-based strain sensor (TFSS) composed of a thermoplastic polyurethane (TPU)/silver nanoparticle (AgNP) fiber and a TPU/carbon nanotube (CNT) fiber. The special twisting structure and the synergistic effect of the different conductive materials endow TFSS with a high GF of 1.05 × 105 within a strain range of 250 ∼ 300%, ultralow detection limit (0.02% strain), large detection range (up to 300% strain), short response time (60 ms), and excellent sensing stability and durability (4000 stretching/releasing cycles under 50% strain). Moreover, the strain sensor can be used for diverse human movement recognition, microexpression detection, pulse/breath monitoring, and speech recognition, offering a promising strategy for designing high-performance and smart wearable devices.

