Towards an understanding of piezoresistivity in filled polymer composites

L. Ritchie, S. Rosset, I. Anderson
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Abstract

Filled polymer composites are capable of combining the favourable mechanical properties of polymers with desirable electrical properties of filler particles. Carbon-black elastomer nanocomposites are capable of conducting electricity while maintaining high stretchability. Despite these materials having been studied and utilised for a number of decades, the relationship between their internal structure and their macroscopic properties is still not fully understood. A major feature of their behaviour is significant piezoresistivity, which can be a nuisance in certain applications and a benefit in others. It is known that there is a relationship between the piezoresistivity of the material and the percolation threshold. However, the exact mechanisms underlying this behaviour are not rigorously understood. This work utilises Monte Carlo modelling to propose and examine ways in which the structure of the internal nanoparticle network, and the evolution of said network with strain could help to explain the piezoresistivity of these materials. Hopefully, a more detailed understanding of this mechanism will lead to an improved capability to customise it for various applications.
对填充聚合物复合材料的压阻性的理解
填充聚合物复合材料能够将聚合物的良好机械性能与填料颗粒的理想电性能结合起来。碳黑弹性体纳米复合材料在保持高拉伸性的同时具有导电性。尽管这些材料已经被研究和利用了几十年,但它们的内部结构和宏观性质之间的关系仍然没有被完全理解。其行为的一个主要特征是显著的压阻性,这在某些应用中可能是一个麻烦,而在其他应用中则是有益的。已知材料的压阻性与渗透阈值之间存在一定的关系。然而,这种行为背后的确切机制还没有得到严格的理解。这项工作利用蒙特卡罗模型来提出和检查内部纳米颗粒网络结构的方式,以及该网络随应变的演变可以帮助解释这些材料的压阻性。希望对这种机制的更详细的理解能够提高针对各种应用程序对其进行定制的能力。
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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