Zare Yasser, Rhee Kyong Yop
Department of Mechanical Engineering, College of Engineering, Kyung Hee University, Yongin 446-701, Korea.
Polymers (Basel). 2020 Jan 5;12(1):114. doi: 10.3390/polym12010114.
This article suggests simple and new equations for the percolation threshold of nanoparticles, the tunneling distance between nanoparticles, and the tunneling conductivity of polymer carbon nanotubes (CNTs) nanocomposites (PCNT), assuming an effective filler concentration. The developed equations correlate the conductivity, tunneling distance, and percolation threshold to CNT waviness, interphase thickness, CNT dimensions, and CNT concentration. The developed model for conductivity is applied for some samples and the predictions are evaluated by experimental measurements. In addition, the impacts of various parameters on the mentioned terms are discussed to confirm the developed equations. Comparisons between the calculations and the experimental results demonstrate the validity of the developed model for tunneling conductivity. High levels of CNT concentration, CNT length, and interphase thickness, as well as the straightness and thinness of CNTs increase the nanocomposite conductivity. The developed formulations can substitute for the conventional equations for determining the conductivity and percolation threshold in CNT-reinforced nanocomposites.
本文提出了关于纳米颗粒渗流阈值、纳米颗粒间隧穿距离以及聚合物碳纳米管(CNT)纳米复合材料(PCNT)隧穿电导率的简单新颖方程,假设存在有效填料浓度。所推导的方程将电导率、隧穿距离和渗流阈值与CNT的波纹度、界面厚度、CNT尺寸以及CNT浓度关联起来。所开发的电导率模型应用于一些样品,并通过实验测量对预测结果进行评估。此外,讨论了各种参数对上述各项的影响,以证实所推导的方程。计算结果与实验结果的比较证明了所开发的隧穿电导率模型的有效性。高水平的CNT浓度、CNT长度和界面厚度,以及CNT的直度和细径会提高纳米复合材料的电导率。所开发的公式可以替代用于确定CNT增强纳米复合材料电导率和渗流阈值的传统方程。