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具有电场辅助纳米碳填料取向的复合材料的电学性质

Electrical Properties of Composite Materials with Electric Field-Assisted Alignment of Nanocarbon Fillers.

作者信息

Yakovenko Olena, Matzui Ludmila, Danylova Ganna, Zadorozhnii Victor, Vovchenko Ludmila, Perets Yulia, Lazarenko Oleksandra

机构信息

Physics Department, Taras Shevchenko National University of Kyiv, Volodymyrska Str., 64/13, Kyiv, 01601, Ukraine.

出版信息

Nanoscale Res Lett. 2017 Dec;12(1):471. doi: 10.1186/s11671-017-2244-0. Epub 2017 Jul 28.

Abstract

The article reports about electric field-induced alignment of the carbon nanoparticles embedded in epoxy matrix. Optical microscopy was performed to consider the effect of the electric field magnitude and configuration, filler morphology, and aspect ratio on alignment process. Characteristic time of aligned network formation was compared with modeling predictions. Carbon nanotube and graphite nanoplatelet rotation time was estimated using an analytical model based on effective medium approach. Different depolarization factor was applied according to the geometries of the particle and electric field.Solid nanocomposites were fabricated by using AC electric field. We have investigated concentration dependence of electrical conductivity of graphite nanoplatelets/epoxy composites using two-probe technique. It was established that the electrical properties of composites with random and aligned filler distribution are differ by conductivity value at certain filler content and distinguish by a form of concentration dependence of conductivity for fillers with different morphology. These differences were explained in terms of the dynamic percolation and formation of various conductive networks: chained in case of graphite nanoplatelets and crossed framework in case of carbon nanotubes filler.

摘要

本文报道了环氧基质中嵌入的碳纳米颗粒在电场作用下的取向情况。通过光学显微镜研究了电场强度和配置、填料形态以及长径比对取向过程的影响。将取向网络形成的特征时间与模型预测结果进行了比较。基于有效介质方法的分析模型估算了碳纳米管和石墨纳米片的旋转时间。根据颗粒和电场的几何形状应用了不同的去极化因子。利用交流电场制备了固体纳米复合材料。我们采用两探针技术研究了石墨纳米片/环氧复合材料电导率的浓度依赖性。结果表明,在一定填料含量下,填料分布随机和取向的复合材料的电学性能在电导率值上存在差异,并且对于不同形态的填料,电导率的浓度依赖性形式也有所不同。这些差异可以从动态渗流和各种导电网络的形成方面进行解释:石墨纳米片情况下为链状,碳纳米管填料情况下为交叉框架状。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c4ca/5533698/7ddbff272e47/11671_2017_2244_Fig1_HTML.jpg

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