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假设围绕碳纳米管的界面层时聚合物纳米复合材料电导率的计算

Calculation of the Electrical Conductivity of Polymer Nanocomposites Assuming the Interphase Layer Surrounding Carbon Nanotubes.

作者信息

Zare Yasser, Rhee Kyong Yop

机构信息

Department of Mechanical Engineering, College of Engineering, Kyung Hee University, Yongin 446-701, Korea.

出版信息

Polymers (Basel). 2020 Feb 11;12(2):404. doi: 10.3390/polym12020404.

Abstract

The interphase layer surrounding nanoparticles can reflect the tunneling effect as the main mechanism of charge transferring in polymer/carbon nanotube (CNT) nanocomposites (PCNT). In this paper, the percolation threshold, effective volume fraction of CNT, and the portion of percolated filler after percolation are expressed by interphase and CNT waviness. Moreover, the developed terms are used to suggest the influences of CNT dimensions, interphase thickness, and waviness on the electrical conductivity of PCNT by conventional and developed models. Thin and long CNT, thick interphase, and low waviness obtain a high fraction of percolated CNT. However, the highest level of effective filler fraction is only calculated by the thinnest CNT and the thickest interphase. Furthermore, both models show that the thinnest and the longest CNT as well as the thickest interphase and the least CNT waviness cause the highest conductivity in PCNT, because they positively contribute to the formation and properties of the conductive network.

摘要

围绕纳米粒子的界面层能够反映出隧穿效应,这是聚合物/碳纳米管(CNT)纳米复合材料(PCNT)中电荷转移的主要机制。本文中,渗流阈值、CNT的有效体积分数以及渗流后渗流填料的比例均通过界面和CNT的波纹度来表示。此外,所提出的术语用于通过传统模型和改进模型来表明CNT尺寸、界面厚度和波纹度对PCNT电导率的影响。细而长的CNT、厚界面和低波纹度会使渗流CNT的比例较高。然而,有效填料分数的最高水平仅通过最细的CNT和最厚的界面计算得出。此外,两个模型均表明,最细且最长的CNT以及最厚的界面和最小的CNT波纹度会使PCNT具有最高的电导率,因为它们对导电网络的形成和性能有积极贡献。

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