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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >On the effect of electric field application during the curing process on the electrical conductivity of single-walled carbon nanotubes-epoxy composites
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On the effect of electric field application during the curing process on the electrical conductivity of single-walled carbon nanotubes-epoxy composites

机译:关于电场应用在固化过程中的影响对单壁碳纳米管 - 环氧复合材料的电导率

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Single-walled carbon nanotube (SWCNT)/epoxy composites were cured under external electric fields and the influence of the processing parameters (electric field magnitude and frequency, SWCNT concentration and curing temperature) on the electrical response of the system was evaluated. A mold for the electric field application was designed and manufactured, allowing in situ measurements of the electrical resistivity of the composite, during and after the curing process. The resulting electrical properties revealed a strong dependence on the processing parameters. By rising the curing temperature, the solid bulk resistivity was decreased by one order of magnitude. Further reduction was observed with electric fields, up to an additional order of magnitude. Such improvements can be related with the decrease in viscosity and improvement of interconnected-nanotube paths within the polymer matrix. The effect of the electric field on the rotation and interconnection of the SWCNTs was investigated using a classical mechanics model based on the dielectrophoretic theory for the liquid state. The influence of inter-nanotube distances on the bulk electrical properties was calculated at different particle concentrations, using finite element models of the microstructure. This processing technique presents promising results for enhancing the electrical conductivity of polymer composites with carbon-based nanoparticles. (C) 2019 The Authors. Published by Elsevier Ltd.
机译:在外部电场下固化单壁碳纳米管(SWCNT)/环氧复合材料,评估了处理参数(电场幅度和频率,SWCNT浓度和固化温度)对系统的电响应的影响。设计和制造用于电场应用的模具,允许在固化过程中和之后的复合材料的电阻率的原位测量。所得到的电性质揭示了对处理参数的强依赖性。通过上升固化温度,固体大量电阻率下降一个级。通过电场观察到进一步减少,直至额外的数量级。这种改进可以与聚合物基质内粘度的降低和互连纳米管道的改善有关。基于液晶介电泳理论的经典力学模型,研究了电场对SWCNT的旋转和互连的影响。使用微结构的有限元模型,计算在不同的颗粒浓度下计算纳米管距离对散装电性能的影响。该处理技术呈现了提高具有碳基纳米颗粒的聚合物复合材料的导电性的有希望的结果。 (c)2019年作者。 elsevier有限公司出版

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