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Pre-Strain Stimulation of Electro-Mechanical Sensitivity of Carbon Nanotube Network/Polyurethane Composites

机译:碳纳米管网络/聚氨酯复合材料的机电敏感性的预应变刺激

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摘要

The change of electrical resistance of a highly extensible composite sensors consisting of a network of entangled multi-wall carbon nanotubes (CNTs) and thermoplastic polyurethane elastomer in the course of elongation was stimulated by initial tensile deformation. Though the initial deformation irreversibly changes the arrangement of CNT network, subsequent cyclic elongation and corresponding resistance change is stable. The resistance sensitivity, quantified by a gauge factor, which defines the sensitivity of strain sensor as the relative resistance change divided by the applied strain, increases nearly five times from the value of about five for not initially elongated composites. This is a substantial increase, which ranks the composites among materials with the highest electromechanical sensitivity. The observed sensitivity increase is discussed on basis of the cracking of a nanotube network with extension when the number of contacts between nanotubes decreases and thus the network has fewer interconnections that can carry an electric current.
机译:由缠结多壁碳纳米管(CNT)和热塑性聚氨酯弹性体组成的网络组成的高度可扩展复合传感器在拉伸过程中的电阻变化受到初始拉伸变形的刺激。尽管初始变形不可逆地改变了CNT网络的排列,但随后的循环伸长和相应的电阻变化却是稳定的。电阻灵敏度(由应变系数量化)将应变传感器的灵敏度定义为相对电阻变化除以施加的应变,相对于最初未伸长的复合材料,电阻灵敏度从约5的值增加了近五倍。这是一个实质性的增长,使复合材料在机电灵敏度最高的材料中排名第一。当纳米管之间的接触数减少时,基于扩展的纳米管网络的开裂,讨论了观察到的灵敏度增加,因此该网络具有较少的可承载电流的互连。

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