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Enhanced electrical properties of vertically aligned carbon nanotube-epoxy nanocomposites with high packing density

机译:具有高堆积密度的垂直排列的碳纳米管-环氧树脂纳米复合材料的增强的电性能

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摘要

During their synthesis, multi-walled carbon nanotubes can be aligned and impregnated in a polymer matrix to form an electrically conductive and flexible nanocomposite with high backing density. The material exhibits the highest reported electrical conductivity of CNT-epoxy composites (350 S/m). Here, we show how conductive atomic force microscopy can be used to study the electrical transport mechanism in order to explain the enhanced electrical properties of the composite. The high spatial resolution and versatility of the technique allows us to further decouple the two main contributions to the electrical transport: (1) the intrinsic resistance of the tube and (2) the tunneling resistance due to nanoscale gaps occurring between the epoxy-coated tubes along the composite. The results show that the material behaves as a conductive polymer, and the electrical transport is governed by electron tunneling at interconnecting CNT-polymer junctions. We also point out the theoretical formulation of the nanoscale electrical transport between the AFM tip and the sample in order to derive both the composite conductivity and the CNT intrinsic properties. The enhanced electrical properties of the composite are attributed to high degree of alignment, the CNT purity, and the large tube diameter which lead to low junction resistance. By controlling the tube diameter and using other polymers, the nanocomposite electrical conductivity can be improved.
机译:在合成过程中,可以将多壁碳纳米管排列并浸渍在聚合物基质中,以形成具有高背衬密度的导电且柔性的纳米复合材料。该材料表现出碳纳米管-环氧树脂复合材料的最高电导率(350 S / m)。在这里,我们展示了如何使用导电原子力显微镜来研究电传输机理,以解释复合材料增强的电性能。该技术的高空间分辨率和多功能性使我们能够进一步消除对电传输的两个主要贡献:(1)管的固有电阻和(2)由于环氧涂层管之间出现纳米级间隙而引起的隧穿电阻沿着复合材料。结果表明,该材料表现为导电聚合物,并且电传输受互连的CNT-聚合物结处的电子隧穿控制。我们还指出了AFM尖端与样品之间的纳米级电传输的理论公式,以便得出复合电导率和CNT的固有特性。复合材料电性能的提高归因于高度的取向度,CNT的纯度和较大的管径,从而导致低的结电阻。通过控制管的直径并使用其他聚合物,可以提高纳米复合材料的电导率。

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