Analytical modeling of the electrical conductivity of CNT-filled polymer nanocomposites

Masoud Ahmadi, Prashant Saxena
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Abstract

Electrical conductivity of most polymeric insulators can be drastically enhanced by introducing a small volume fraction [Formula: see text] of conductive nanofillers. These nanocomposites find wide-ranging engineering applications from cellular metamaterials to strain sensors. In this work, we present a mathematical model to predict the effective electrical conductivity of carbon nanotubes (CNTs)/polymer nanocomposites accounting for the conductivity, dimensions, volume fraction, and alignment of the CNTs. Eshelby’s classical equivalent inclusion method (EIM) is generalized to account for electron-hopping—a key mechanism of electron transport across CNTs, and is validated with experimental data. Two measurements, namely, the limit angle of filler orientation and the probability distribution function, are used to control the alignment of CNTs within the composites. Our simulations show that decreasing the angle from a uniformly random distribution to a fully aligned state significantly reduces the transverse electrical conductivity, while the longitudinal conductivity shows less sensitivity to angle variation. Moreover, it is observed that distributing CNTs with non-uniform probability distribution functions results in an increase in longitudinal conductivity and a decrease in transverse conductivity, with these differences becoming more pronounced as the volume fraction of CNTs is increased. A reduction in CNT length decreases the effective electrical conductivity due to the reduced number of available conductive pathways while reducing CNT diameter increases the conductivity.
碳纳米管填充聚合物纳米复合材料导电性的分析建模
大多数聚合物绝缘体的导电性能可通过引入少量导电纳米填料[计算公式:见正文]而大幅提高。这些纳米复合材料具有广泛的工程应用,从细胞超材料到应变传感器。在这项工作中,我们提出了一个数学模型来预测碳纳米管/聚合物纳米复合材料的有效电导率,其中考虑到了碳纳米管的电导率、尺寸、体积分数和排列方式。Eshelby 的经典等效包含法 (EIM) 被推广到电子跳跃(电子跨 CNT 传输的关键机制),并通过实验数据进行了验证。填料取向极限角和概率分布函数这两种测量方法用于控制复合材料中 CNT 的排列。我们的模拟结果表明,从均匀随机分布到完全排列状态,角度的减小会显著降低横向导电率,而纵向导电率对角度变化的敏感性较低。此外,我们还观察到,以非均匀概率分布函数分布 CNT 会导致纵向电导率增加和横向电导率降低,随着 CNT 体积分数的增加,这些差异会变得更加明显。减少碳纳米管的长度会降低有效电导率,因为可用导电路径的数量减少了,而减少碳纳米管的直径则会增加电导率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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