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Modeling the interphase of a polymer-based nanodielectric

机译:建模基于聚合物的纳米介电体的相间

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摘要

A three-phase theoretical model is proposed that is suitable for describing the effective permittivity of polymer-matrix composites containing spherical nanoparticles. The model accounts for the presence of an interphase region, which surrounds each nanosphere, whose permittivity is allowed to be different from that of the matrix polymer. The nanoparticles themselves are approximated as hard (non-overlapping) spheres, whereas the interphase regions of neighboring nanoparticles are permitted to overlap. The volume fraction of the interphase region is computed by assuming that the nanoparticles are arranged on the nodes of a simple-cubic lattice. The effective permittivity of the composite is subsequently computed via three-phase Wiener bounds. As an example application of the model, permittivity data measured on a silicon/bisphenol E cyanate ester nanodielectric and a low-density polyethylene/alumina nanodielectric are shown to lie outside the range of the two-phase Wiener bounds yet lie within the range of the three-phase Wiener bounds with appropriate choice of interphase permittivity and thickness.
机译:提出了一个三相理论模型,该模型适合于描述包含球形纳米颗粒的聚合物-基质复合材料的有效介电常数。该模型说明存在一个相区,该相区围绕每个纳米球,其介电常数被允许与基质聚合物的介电常数不同。纳米粒子本身近似为硬(非重叠)球体,而相邻纳米粒子的相间区域则可以重叠。通过假设纳米颗粒排列在简单立方晶格的节点上来计算相间区域的体积分数。随后通过三相维纳范围计算复合材料的有效介电常数。作为模型的示例应用,显示在硅/双酚E氰酸酯纳米电介质和低密度聚乙烯/氧化铝纳米电介质上测得的介电常数数据超出了两相维纳范围的范围,但仍在三相维纳边界,可以适当选择相间介电常数和厚度。

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