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Novel nanocomposites reinforced with hydroxylated poly(ether ether ketone)-grafted carbon nanotubes

机译:羟基化聚醚醚酮接枝碳纳米管增强的新型纳米复合材料

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摘要

High-performance poly(ether ether ketone) (PEEK) nanocomposites have been prepared via melt-blending by the incorporation of a hydroxylated polymer derivative (HPEEK) covalently grafted onto the surface of single-walled carbon nanotubes (SWCNTs). Their morphology, thermal, mechanical and electrical properties have been investigated and compared with the behaviour of composites reinforced with similar non-grafted fillers. Microscopic observations reveal that the grafting of the HPEEK onto the SWCNTs facilitates their dispersion within the matrix. The crystallization and melting temperature of PEEK decrease upon incorporation of the HPEEK-grafted SWCNTs, ascribed to the restrictions on polymer chain mobility imposed by the strong CNT-matrix interactions. The addition of these fillers leads to an exceptional increase in the thermal stability, storage modulus and glass transition temperature of the matrix. Tensile tests show unprecedented improvements in the Young's modulus, strength and toughness of the composites by the polymer grafting, attributed to a very effective load transfer achieved through covalent and hydrogen bonding. Electrical conductivity measurements indicate that the typical percolation behaviour takes place at very low SWCNT contents. In contrast, the thermal conductivity increases almost linearly with the filler loading. This approach is a simple, scalable and efficient method to improve the overall performance of thermoplastic nanocomposites for potential lightweight structural applications.
机译:通过掺入共价接枝到单壁碳纳米管(SWCNT)表面的羟基化聚合物衍生物(HPEEK),通过熔融共混制备高性能聚醚醚酮(PEEK)纳米复合材料。研究了它们的形态,热,机械和电性能,并将其与用类似的非接枝填料增强的复合材料的性能进行了比较。显微镜观察表明,HPEEK接枝到SWCNT上有助于它们在基质中的分散。掺入HPEEK接枝的SWCNT后,PEEK的结晶和熔融温度降低,这归因于强的CNT-基质相互作用对聚合物链迁移率的限制。这些填料的加入导致基质的热稳定性,储能模量和玻璃化转变温度异常增加。拉伸试验表明,通过接枝聚合物,复合材料的杨氏模量,强度和韧性得到了前所未有的提高,这归因于通过共价键和氢键实现的非常有效的负载转移。电导率测量表明典型的渗滤行为发生在非常低​​的SWCNT含量下。相反,热导率几乎随填料的添加呈线性增加。这种方法是一种简单,可扩展且有效的方法,可针对潜在的轻型结构应用来改善热塑性纳米复合材料的整体性能。

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