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Multi-walled carbon nanotube and carbon nanofiber/ polyacrylonitrile aerogel scaffolds for enhanced epoxy resins

机译:用于增强环氧树脂的多壁碳纳米管和碳纳米纤维/聚丙烯腈气凝胶支架

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摘要

Despite the unique characteristics of carbon nanostructures such as carbon nanotube (CNTs) and carbon nanofibers (CNFs), their practical applications are limited because of their extremely low solubility and poor dispersion characteristics. To obtain composites with favorable electrical, thermal and mechanical properties, a network of nanofiller/polyacrylonitrile (PAN) aerogel was prepared by non-solvent and thermally induced phase separation (NIPS/TIPS) method and used as a scaffold to create epoxy nanocomposite. Compared with the conventional mixing, this method brought about a considerable increase of compressive strength (about 500%). Furthermore, an electrical percolation threshold as low as 0.0028 and 0.019 vol % was observed for CNT/polyacrylonitrile/epoxy nanocomposites (CNT/PA/E) and CNF/polyacrylonitrile/epoxy nanocomposites (CNF/PA/E), respectively. To the best of our knowledge, this small amount of percolation threshold has not yet been reported for CNT and CNF based nanocomposites. Such intriguing performance can mainly be related to a three-dimensional nanotube and nanofiber network structure in the resin matrix.
机译:尽管碳纳米结构(例如碳纳米管(CNT)和碳纳米纤维(CNF))具有独特的特性,但由于其极低的溶解度和较差的分散特性,其实际应用受到了限制。为了获得具有良好的电,热和机械性能的复合材料,通过非溶剂和热诱导相分离(NIPS / TIPS)方法制备了纳米填料/聚丙烯腈(PAN)气凝胶网络,并将其用作支架来制备环氧纳米复合材料。与常规混合相比,此方法可显着提高抗压强度(约500%)。此外,对于CNT /聚丙烯腈/环氧纳米复合材料(CNT / PA / E)和CNF /聚丙烯腈/环氧纳米复合材料(CNF / PA / E),分别观察到低至0.0028和0.019vol%的电渗透阈值。据我们所知,对于基于CNT和CNF的纳米复合材料,尚未见到少量的渗滤阈值。这种有趣的性能可能主要与树脂基体中的三维纳米管和纳米纤维网络结构有关。

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