Flexible and Lightweight Pressure Sensor Based on Carbon Nanotube/Thermoplastic Polyurethane-Aligned Conductive Foam with Superior Compressibility and Stability

材料科学 复合材料 热塑性聚氨酯 聚氨酯 压阻效应 渗流阈值 碳纳米管 碳纳米泡沫 多孔性 导电体 标度系数 制作 压力传感器 弹性体 电阻率和电导率 医学 物理 替代医学 工程类 病理 电气工程 热力学
作者
Wenju Huang,Kun Dai,Yue Zhai,Hu Liu,Pengfei Zhan,Jiachen Gao,Guoqiang Zheng,Chuntai Liu,Changyu Shen
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:9 (48): 42266-42277 被引量:254
标识
DOI:10.1021/acsami.7b16975
摘要

Flexible and lightweight carbon nanotube (CNT)/thermoplastic polyurethane (TPU) conductive foam with a novel aligned porous structure was fabricated. The density of the aligned porous material was as low as 0.123 g·cm-3. Homogeneous dispersion of CNTs was achieved through the skeleton of the foam, and an ultralow percolation threshold of 0.0023 vol % was obtained. Compared with the disordered foam, mechanical properties of the aligned foam were enhanced and the piezoresistive stability of the flexible foam was improved significantly. The compression strength of the aligned TPU foam increases by 30.7% at the strain of 50%, and the stress of the aligned foam is 22 times that of the disordered foam at the strain of 90%. Importantly, the resistance variation of the aligned foam shows a fascinating linear characteristic under the applied strain until 77%, which would benefit the application of the foam as a desired pressure sensor. During multiple cyclic compression-release measurements, the aligned conductive CNT/TPU foam represents excellent reversibility and reproducibility in terms of resistance. This nice capability benefits from the aligned porous structure composed of ladderlike cells along the orientation direction. Simultaneously, the human motion detections, such as walk, jump, squat, etc. were demonstrated by using our flexible pressure sensor. Because of the lightweight, flexibility, high compressibility, excellent reversibility, and reproducibility of the conductive aligned foam, the present study is capable of providing new insights into the fabrication of a high-performance pressure sensor.
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