JOURNAL ARTICLE

Highly Stretchable Core–Sheath Fibers via Wet-Spinning for Wearable Strain Sensors

Zhenhua TangShuhai JiaFei WangChangsheng BianYuyu ChenYonglin WangBo Li

Year: 2018 Journal:   ACS Applied Materials & Interfaces Vol: 10 (7)Pages: 6624-6635   Publisher: American Chemical Society

Abstract

Lightweight, stretchable, and wearable strain sensors have recently been widely studied for the development of health monitoring systems, human-machine interfaces, and wearable devices. Herein, highly stretchable polymer elastomer-wrapped carbon nanocomposite piezoresistive core-sheath fibers are successfully prepared using a facile and scalable one-step coaxial wet-spinning assembly approach. The carbon nanotube-polymeric composite core of the stretchable fiber is surrounded by an insulating sheath, similar to conventional cables, and shows excellent electrical conductivity with a low percolation threshold (0.74 vol %). The core-sheath elastic fibers are used as wearable strain sensors, exhibiting ultra-high stretchability (above 300%), excellent stability (>10 000 cycles), fast response, low hysteresis, and good washability. Furthermore, the piezoresistive core-sheath fiber possesses bending-insensitiveness and negligible torsion-sensitive properties, and the strain sensing performance of piezoresistive fibers maintains a high degree of stability under harsh conditions. On the basis of this high level of performance, the fiber-shaped strain sensor can accurately detect both subtle and large-scale human movements by embedding it in gloves and garments or by directly attaching it to the skin. The current results indicate that the proposed stretchable strain sensor has many potential applications in health monitoring, human-machine interfaces, soft robotics, and wearable electronics.

Keywords:
Materials science Spinning Core (optical fiber) Wearable computer Strain (injury) Composite material Stretchable electronics Wearable technology Nanotechnology Electrical engineering Electronics Computer science Embedded system

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Citation History

Topics

Advanced Sensor and Energy Harvesting Materials
Physical Sciences →  Engineering →  Biomedical Engineering
Tactile and Sensory Interactions
Life Sciences →  Neuroscience →  Cognitive Neuroscience
Textile materials and evaluations
Physical Sciences →  Materials Science →  Polymers and Plastics
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