Synthesis Process Optimization of Polyimide Nanocomposite Multilayer Films, Their Dielectric Properties, and Modeling

S. Akram, J. Castellon, S. Agnel, J. Habas
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引用次数: 6

Abstract

Polymer nanocomposite-based dielectric materials are playing a vital role in the area of electrical insulation research and developments. The nanoparticle dispersion and interface region are the crucial parts of these developments. This chapter begins with the description of physical properties and their derived nanoparticles of polyimide (PI) films. Then, the detailed synthesis process of PI/nanocomposite multilayer film and its optimization is discussed in this chapter. Several factors in the synthesis process, which can influence the quality of the film, are discussed. After synthesis, the dielectric properties such as space charge were measured, and the results are compared with single and multilayer PI/nanocomposite films. Simulations and modeling help to shed light on the experimental results and create an understanding of polymer nanocomposite properties. Therefore, the PI/nanocomposite multilayer 3D model based on boundary conditions obtained from SEM/TEM images of synthesized samples was also constructed and simulated in COMSOL multiphysics software. The nanoparticle agglomeration and the impact of nanoparticle dispersion on the electrical properties of the material are described in detail in this model. The results demonstrate that the nanoparticle dispersion is improved by using a thin layer of PI/nanocomposite on PI film. As a result, fewer space charges and low electric fields are observed in multilayer films.
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聚酰亚胺纳米复合多层膜的合成工艺优化、介电性能及建模
聚合物纳米复合介质材料在电绝缘领域的研究和发展中起着至关重要的作用。纳米粒子的分散和界面区域是这些发展的关键部分。本章首先描述了聚酰亚胺(PI)薄膜的物理性质及其衍生的纳米颗粒。然后,详细讨论了PI/纳米复合多层膜的合成工艺及其优化。讨论了合成过程中影响薄膜质量的几个因素。合成后,测量了PI/纳米复合膜的介电性能,并与单层和多层PI/纳米复合膜进行了比较。模拟和建模有助于阐明实验结果,并创造对聚合物纳米复合材料性质的理解。因此,利用COMSOL多物理场软件构建了基于边界条件的PI/纳米复合材料多层三维模型。在该模型中详细描述了纳米颗粒团聚和纳米颗粒分散对材料电性能的影响。结果表明,在PI薄膜上使用薄层PI/纳米复合材料可以改善纳米颗粒的分散性。因此,在多层薄膜中观察到较少的空间电荷和低电场。
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