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首页> 外文期刊>Journal of Applied Physics >Percolation threshold and electrical conductivity of graphene-based nanocomposites with filler agglomeration and interfacial tunneling
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Percolation threshold and electrical conductivity of graphene-based nanocomposites with filler agglomeration and interfacial tunneling

机译:含填料团聚和界面隧穿的石墨烯基纳米复合材料的渗流阈值和电导率

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摘要

The dispersion state or degree of agglomeration of graphene is known to have a significant influence on the percolation threshold and electrical conductivity of graphene-based polymer nanocomposites. In addition, an imperfectly conducting interface and tunneling-assisted interfacial conductivity can also affect the overall conductivity. In this paper, a continuum theory is developed that considers all these factors. We first present a two-scale composite model consisting of graphene-rich regions serving as the agglomerates and a graphene-poor region as the matrix. We then introduce the effective-medium theory to determine the percolation threshold and electrical conductivity of the agglomerate and the composite. To account for the effect of imperfect interfaces, a thin layer of interphase with low conductivity is introduced to build a thinly coated graphene, while to account for the contribution of electron hopping from one graphene to another, Cauchy's statistical function which can reflect the increased tunneling activity near the percolation threshold is introduced. It is shown that the percolation threshold of the nanocomposite is controlled by two dispersion parameters, a and b, and the aspect ratio of agglomerates, α_R. It is also shown that the overall conductivity of the nanocomposite mainly depends on the intrinsic conductivity of graphene and polymer matrix, the intrinsic interfacial resistivity, and the tunneling-assisted hopping process. We highlight the conceived theory by demonstrating that a set of recently measured data on the percolation threshold and electrical conductivity of graphene/polystyrene nanocomposites can be well captured by it.
机译:已知石墨烯的分散状态或团聚程度对石墨烯基聚合物纳米复合材料的渗透阈值和电导率具有重大影响。另外,不完美的导电界面和隧穿辅助的界面电导率也会影响整体电导率。本文提出了一种考虑所有这些因素的连续体理论。我们首先提出了一个两级复合模型,该模型由富含石墨烯的区域作为聚集体和缺乏石墨烯的区域作为基质组成。然后,我们引入有效介质理论来确定团聚体和复合材料的渗透阈值和电导率。为了解决不完美界面的影响,引入了一层低电导率的相间薄层来构建薄涂层的石墨烯,同时考虑到了电子从一种石墨烯到另一种石墨烯的跃迁,柯西的统计函数可以反映出隧道效应的增加。引入接近渗滤阈值的活性。结果表明,纳米复合材料的渗滤阈值受两个分散参数a和b以及团聚体的长径比α_R的控制。还表明,纳米复合材料的总电导率主要取决于石墨烯和聚合物基体的固有电导率,固有界面电阻率以及隧道辅助的跳跃过程。我们通过证明可以很好地捕获石墨烯/聚苯乙烯纳米复合材料的渗滤阈值和电导率的一组最新测量数据,来突出这一概念理论。

著录项

  • 来源
    《Journal of Applied Physics》 |2015年第6期|065101.1-065101.10|共10页
  • 作者单位

    Department of Mechanical and Aerospace Engineering, Rutgers University, New Brunswick, New Jersey 08903, USA;

    Department of Mechanical and Aerospace Engineering, Rutgers University, New Brunswick, New Jersey 08903, USA;

    Department of Mechanical and Aerospace Engineering, Rutgers University, New Brunswick, New Jersey 08903, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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