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Predicting the electrical conductivity in polymer carbon nanotube nanocomposites based on the volume fractions and resistances of the nanoparticle, interphase, and tunneling regions in conductive networks

机译:根据导电网络中纳米颗粒,相间和隧穿区域的体积分数和电阻预测聚合物碳纳米管纳米复合材料的电导率

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Some limited models have been suggested to determine the conductivity of polymer carbon nanotube (CNT) nanocomposites (PCNTs). However, earlier models ( e.g. , the Kovacs model) cannot properly consider the roles of the interphase regions or tunneling properties on the percolation threshold and subsequent conductivity of PCNTs. In this paper, the Kovacs model is further developed by assuming that the CNT, interphase, and tunneling regions are separate phases. Also, some simple equations are provided to calculate the percolation threshold as well as the volume fractions and resistances of the CNT, interphase, and tunneling regions in conductive networks. The experimental conductivity results for several samples are compared with the predictions of the developed model. In addition, the calculations of the developed model at different parameter levels are explained and justified. The conductivity calculations show good agreement with the experimental data. Moreover, the developed model reasonably explains the roles of the different parameters on the conductivity. For example, long, thin, and straight CNTs efficiently improve the conductivity because they form large networks in the nanocomposites. Additionally, a thick interphase enlarges the conductive networks, resulting in a desirable conductivity. The conductivity of PCNTs only depends on the tunneling resistance; this is the case because the poor resistance/significant conductivity of the CNT and interphase regions do not influence the conductivity. The developed equations can replace conventional approaches for predicting the conductivity of nanocomposites.
机译:已经提出了一些有限的模型来确定聚合物碳纳米管(CNT)纳米复合材料(PCNT)的电导率。然而,较早的模型(例如,Kovacs模型)不能适当地考虑相间区域的作用或隧穿性质对PCNT的渗透阈值和随后的电导率的作用。在本文中,通过假设CNT,相间和隧穿区域是独立的相来进一步开发Kovacs模型。而且,提供了一些简单的方程式来计算渗流阈值以及导电网络中CNT,相间和隧穿区域的体积分数和电阻。将几个样品的实验电导率结果与开发模型的预测结果进行比较。此外,还解释并论证了在不同参数级别上对已开发模型的计算。电导率计算结果与实验数据吻合良好。此外,开发的模型合理地解释了不同参数对电导率的作用。例如,长,薄且直的CNT有效地提高了导电性,因为它们在纳米复合材料中形成了较大的网络。另外,厚的相间扩大了导电网络,从而产生了理想的导电性。 PCNT的电导率仅取决于隧穿电阻。之所以如此,是因为CNT和相间区域的不良电阻/有效电导率不影响电导率。所开发的方程可以替代用于预测纳米复合材料电导率的常规方法。

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