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Development of Novel Graphene and Carbon Nanotubes Based Multifunctional Polymer Matrix Composites

机译:基于新型石墨烯和碳纳米管的多官能聚合物基质复合材料的研制

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This paper investigates strategies to alter the nano-and-microstructures of carbon-based filler-reinforced polymer matrix composites (PMCs).The matrix materials being studied in this work include polyphenylene sulfide (PPS) and liquid crystal polymer (LCP). A set of experiments were performed to investigate various strategies (i) to fabricate a morphological structure within the polymer matrix; (ii) to develop a thermally and electrically conductive network of nano-scaled fillers; and (iii) to produce a thermally conductive but electrically insulative network of hybrid fillers of nano-and-micro scales. The PMCs' structure-to-property relationships, including electrical and thermal properties, were revealed. In particular, the composites' effective thermal conductivities could be increased by as much as 10-folded over the neat polymers. By structuring the embedded electrically conductive pathways in the PMCs, their electrical conductivities could be tailored to levels that ranged from those of electrical insulators to those of semi-conductors. These multifunctional carbon-based filler-reinforced PMCs are envisioned to be potential solutions of various engineering problems. For example, light-weight thermally conductive PMCs with tailored electrical conductivities can serve as a new family of materials for electronic packaging or heat management applications.
机译:本文研究了改变碳基填充型聚合物基复合材料(PMC)的纳米和微结构的策略。在该工作中研究的基质材料包括聚苯硫醚(PPS)和液晶聚合物(LCP)。进行一组实验以研究各种策略(I)以制造聚合物基质内的形态学结构; (ii)开发纳米缩放填料的热导电网络; (iii)产生纳米和微鳞片的杂交填料的导热但电绝缘网络。揭示了PMC的结构与属性关系,包括电气和热性质。特别地,复合材料的有效导热率可以通过整洁聚合物的多达10倍。通过在PMC中构建嵌入的导电通路,它们的电导率可以根据电气绝缘体的水平定制到半导体的水平。这些多功能碳基填充加强PMC被设想为各种工程问题的潜在解决方案。例如,具有量身定制的电导率的轻热导电PMC可以作为电子包装或热管理应用的新材料系列。

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