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Estimating and understanding the efficiency of nanoparticles in enhancing the conductivity of carbon nanotube/polymer composites

机译:估计和理解纳米颗粒增强碳纳米管/聚合物复合材料电导率的效率

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摘要

Carbon nanotubes (CNTs) have been widely used to improve the electrical conductivity of polymers. However, not all CNTs actively participate in the conduction of electricity since they have to be close to each other to form a conductive network. The amount of active CNTs is rarely discussed as it is not captured by percolation theory. However, this amount is a very important information that could be used in a definition of loading efficiency for CNTs (and, in general, for any nanofiller). Thus, we develop a computational tool to quantify the amount of CNTs that actively participates in the conductive network. We then use this quantity to propose a definition of loading efficiency. We compare our results with an expression presented in the literature for the fraction of percolated CNTs (although not presented as a definition of efficiency). We found that this expression underestimates the fraction of percolated CNTs. We thus propose an improved estimation. We also study how efficiency changes with CNT loading and the CNT aspect ratio. We use this concept to study the size of the representative volume element (RVE) for polymers loaded with CNTs, which has received little attention in the past. Here, we find the size of RVE based on both loading efficiency and electrical conductivity such that the scales of “morphological” and “functional” RVEs can be compared. Additionally, we study the relations between particle and network properties (such as efficiency, CNT conductivity and junction resistance) and the conductivity of CNT/polymer composites. We present a series of recommendations to improve the conductivity of a composite based on our simulation results.
机译:碳纳米管(CNT)已被广泛用于改善聚合物的导电性。但是,并非所有的CNT都积极参与导电,因为它们必须彼此靠近才能形成导电网络。活性碳纳米管的数量很少被讨论,因为它没有被渗滤理论捕获。但是,此量是非常重要的信息,可用于定义CNT(通常是任何纳米填料)的加载效率。因此,我们开发了一种计算工具来量化积极参与导电网络的CNT数量。然后,我们使用此数量提出装载效率的​​定义。我们将我们的结果与文献中渗透碳纳米管的比例进行了比较(尽管未将其定义为效率的定义)。我们发现该表达式低估了渗滤碳纳米管的比例。因此,我们提出了一种改进的估计。我们还研究了效率如何随CNT负载和CNT长宽比而变化。我们使用此概念来研究负载CNT的聚合物的代表性体积元素(RVE)的大小,这在过去很少受到关注。在这里,我们基于负载效率和电导率找到RVE的大小,以便可以比较“形态”和“功能” RVE的规模。此外,我们研究了颗粒和网络特性(例如效率,CNT电导率和结电阻)与CNT /聚合物复合材料电导率之间的关系。我们根据模拟结果提出了一系列建议,以提高复合材料的电导率。

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