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Foaming Effects on Conductivity Percolation Threshold in Conductive Polymer Composites

机译:发泡对导电聚合物复合材料电导率渗流阈值的影响

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摘要

Conductive filler/polymer composite foams (CPC) with micro-/nano-scale bubbles have attracted much attention due to their various advantages. Understanding the evolution of electrical behavior in CPC foams is important for their functional application. This thesis investigated the foaming effects on the re-alignment of the conductive filler and the subsequent conductivity percolation threshold of CPC foams experimentally and theoretically. The polystyrene (PS) and multiwalled carbon nanotubes (MWCNTs) were selected as the model system for analysis. In the experimental approach, we prepared a series of PS/MWCNTs composite foams using solvent-mixing method to blend PS and MWCNTs followed by the conventional batch foaming. It was found that at a relatively low void fraction, the electrical conductivity can be increased, and the percolation threshold can be decreased. In the theoretical modeling, a novel resistive network model based on Monte Carlo simulation to directly predict the electrical conductivity of CPC foams was developed. The model predictions agreed very well with the experimental data for both the solid and foamed composites. At relatively low void fractions (up to ~30 %), the growth of bubbles with size comparable to the MWCNT length increased the conductivity. The methods and models developed in this work are useful tools for understanding the underlying mechanism of percolation behavior in CPC foams, as well as quantitative tools in the design of CPC foams. Furthermore, the approaches and strategies used to develop such computational model can provide guidelines and useful references for model simulation in other functional polymer composite foams, such as thermally conductive polymer composite foams.
机译:具有微/纳米级气泡的导电填料/聚合物复合泡沫 (CPC) 因其各种优点而备受关注。了解 CPC 泡沫中电气行为的演变对于其功能应用非常重要。本论文从实验和理论上研究了发泡对导电填料重新对准和 CPC 泡沫随后的导电渗透阈值的影响。选择聚苯乙烯 (PS) 和多壁碳纳米管 (MWCNT) 作为分析模型系统。在实验方法中,我们使用溶剂混合方法制备了一系列 PS/MWCNTs 复合泡沫,将 PS 和 MWCNTs 混合,然后进行常规批量发泡。研究发现,在相对较低的空隙率下,可以提高电导率,降低渗流阈值。在理论建模中,开发了一种基于蒙特卡洛模拟的新型电阻网络模型,直接预测 CPC 泡沫的导电性。模型预测与固体和泡沫复合材料的实验数据非常吻合。在相对较低的空隙率(高达 ~30%)下,尺寸与 MWCNT 长度相当的气泡的生长增加了电导率。这项工作开发的方法和模型是了解 CPC 泡沫中渗流行为的潜在机制的有用工具,也是 CPC 泡沫设计中的定量工具。此外,用于开发此类计算模型的方法和策略可以为其他功能性聚合物复合泡沫(如导热聚合物复合泡沫)的模型模拟提供指导和有用的参考。

著录项

  • 作者

    Wang, Sai;

  • 作者单位

    University of Toronto (Canada);

    University of Toronto (Canada);

    University of Toronto (Canada);

  • 授予单位 University of Toronto (Canada);University of Toronto (Canada);University of Toronto (Canada);
  • 学科 Materials science;Fluid mechanics;Polymer chemistry;Mechanical engineering
  • 学位
  • 年度 2021
  • 页码 155
  • 总页数 155
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Materials science; Fluid mechanics; Polymer chemistry; Mechanical engineering;

    机译:材料科学;流体力学;高分子化学;机械工程;
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