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Tunneling resistance model for piezoresistive carbon nanotube polymer composites

机译:压阻式碳纳米管聚合物复合材料的隧穿电阻模型

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摘要

Carbon nanotube (CNT) polymer composites exhibit outstanding electrical conductivity that enables a myriad of sensing and actuation applications. Highly sensitive strain sensors can be realized through piezoresistivity in which a resistance change is induced by mechanical strains. Tunneling conduction between CNTs in close proximity is a major mechanism contributing to the overall piezoresistivity of the CNT network, and is sensitive to the separation distance, lattice registry and the orbital overlap of the interacting CNTs. In this paper, we propose a tunneling resistance model that relate these effects to the CNT chirality, geometry, and orientation. We construct the model based on the distance-dependent Landauer equation, and introduce two additional geometric variables, namely the lattice alignment angle and the axis alignment angle. The tunneling resistance model is incorporated into a CNT network representative volume element to determine the piezoresistivity of the CNT polymer composite. The model reproduces the periodic variation of tunneling resistance consistent with experimental observations and quantum simulations in the literature, and provides improved predictive accuracy of piezoresistivity in CNT polymer composites.
机译:碳纳米管 (CNT) 聚合物复合材料具有出色的导电性,可用于多种传感和驱动应用。高灵敏度应变传感器可以通过压阻率来实现,其中电阻变化是由机械应变引起的。近距离碳纳米管之间的隧穿传导是影响碳纳米管网络整体压阻率的主要机制,对相互作用的碳纳米管的分离距离、晶格登记和轨道重叠很敏感。在本文中,我们提出了一个隧穿阻力模型,将这些效应与碳纳米管手性、几何形状和取向联系起来。基于距离相关的Landauer方程构建了模型,并引入了两个额外的几何变量,即晶格对准角和轴对准角。将隧穿电阻模型纳入CNT网络代表性体积单元中,以确定CNT聚合物复合材料的压阻率。该模型再现了隧穿电阻的周期性变化,与文献中的实验观测和量子模拟一致,提高了CNT聚合物复合材料压阻率的预测精度。

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