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Non-Linearity of Electrical Conductivity for Aligned Multi-Walled Carbon Nanotube Nanocomposites: Numerical Estimation of Significance of Influencing Factors

机译:对准多壁碳纳米管纳米复合材料的非线性导电性:影响因素的重要性的数值估算

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The non-linearity of the electrical conductivity with applied voltage is numerically simulated for aligned multi-walled carbon nanotube (A-CNT) nanocomposites. The geometry of the reinforcement is generated based on the morphology of the A-CNT forest experimentally observed by 3D transmission electron microscope computed tomography. The polymer matrix is assumed to be electrically insulative; therefore, DC electrical conductivity is estimated by the current-voltage characteristic of the conducting CNT morphology At different values of voltage, the influence of electrical fields and magnetic fields leads to conformational changes in the nanotube network being the significant factor of the conductivity change for soft materials. The change of the tunneling resistance with the applied voltage are taken into account. The influences of the mentioned factors are comparatively analyzed. Combination of the effects provides the cumulative non-linear dependence for the nanocomposite electrical conductivity. The non-linear effects appear only for very high applied voltage, 1 V/µm and higher; the conformational change effect is felt only if the matrix on the nanocomposite is very soft, such as in foams.
机译:用施加电压的导电率的非线性用于对齐的多壁碳纳米管(A-CNT)纳米复合材料进行数值模拟。基于通过3D透射电子显微镜计算机断层扫描实验观察的A-CNT林的形态产生加强件的几何形状。将聚合物基质假设是电绝缘的;因此,通过电压不同值的电流电压特性估计DC导电性,电场和磁场的影响导致纳米管网络的构象变化是柔软的电导率变化的显着因素。材料。考虑到施加电压的隧道电阻的变化。相对分析了提到的因子的影响。效果的组合为纳米复合电导率提供了累积的非线性依赖性。非线性效应仅出现非常高的施加电压,1V /μm和更高;仅当纳米复合材料上的基质非常柔软时,才感受到构象变化效果,例如在泡沫中。

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