MWCNTs/TPU composite fibers— (a) Schemes of the process for the preparation of MWCNTs/TPU composite fibers by wet spinning method. The exhibition of flexible features of MWCNTs/TPU composite fibers under (b) stretching, and (c) twisting. d, e) The as-spun fiber wrapped around a cylinder over 4?m or placed on a petri dishes. f) A cassock knot woven by MWCNTs/TPU composite fiber on a flower. Credit: Wang et al. and Elsevier 2018
MWCNTs/TPU composite fibers— (a) Schemes of the process for the preparation of MWCNTs/TPU composite fibers by wet spinning method. The exhibition of flexible features of MWCNTs/TPU composite fibers under (b) stretching, and (c) twisting. d, e) The as-spun fiber wrapped around a cylinder over 4?m or placed on a petri dishes. f) A cassock knot woven by MWCNTs/TPU composite fiber on a flower. Credit: Wang et al. and Elsevier 2018

Highly flexible and stretchable strain sensors play an important role in the wearable electronic systems. Up to now, it is still an enormous challenge to achieve a good balance between the wide response range and high sensitivityfor a resistive-type flexible strain sensor. In this work, we prepared a fiber-shaped strain sensor based on thermoplastic polyurethane (TPU) and multi-walled carbon nanotubes (MWCNTs) via a simple and cost-efficient wet-spun method. The production process can satisfy continuous and large-scale preparation. The generation of the interesting porous structure is related to the solvent exchange in solidification process and beneficial to the improvement of the sensing range. In the uniaxial stretching test, the MWCNTs/TPU fiber-shaped sensor showed an ultra-wide workable strain range (320%), a high sensitivity (gage factor of 22.2 within 160% strain and 97.1 for strain of 160–320%) and a fast response time (<200?ms). The MWCNTs/TPU composite fibersensor exhibited good reproducibility and excellent durability in multi-cycle test (9700 cycles at 100% strain). The mechanism of the response behavior was studied through the tunneling theory. The strain sensor shows potential applications in human motion detections including bending of the fingers, elbows and knee, squatting and squat-jumping. The present paper provides an effective strategy for the design of high performance fiber-shaped wearable electronic systems.

This article originally appeared in Composites Science and Technology

 

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