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Fabrication and Characterization of Solid Composite Yarns from Carbon Nanotubes and Poly(dicyclopentadiene)

机译:碳纳米管和聚二环戊二烯固体复合纱线的制备与表征

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摘要

In this report, networks of carbon nanotubes (CNTs) are transformed into composite yarns by infusion, mechanical consolidation and polymerization of dicyclopentadiene (DCPD). The microstructures of the CNT yarn and its composite are characterized by scanning electron microscopy (SEM), high resolution transmission electron microscopy (HRTEM), and a focused ion beam used for cross-sectioning. Pristine yarns have tensile strength, modulus and elongation at failure of 0.8 GPa, 14 GPa and 14.0%, respectively. In the composite yarn, these values are significantly enhanced to 1.2 GPa, 68 GPa and 3.4%, respectively. Owing to the consolidation and alignment improvement, its electrical conductivity was increased from 1.0 × 10 S/m (raw yarn) to 5.0 × 10 S/m and 5.3 × 10 S/m for twisted yarn and composite yarn, respectively. The strengthening mechanism is attributed to the binding of the DCPD polymer, which acts as a capstan and increases frictional forces within the nanotube bundles, making it more difficult to pull them apart.
机译:在本报告中,通过注入,机械固结和双环戊二烯(DCPD)聚合将碳纳米管(CNT)网络转变为复合纱线。 CNT纱线及其复合材料的微观结构通过扫描电子显微镜(SEM),高分辨率透射电子显微镜(HRTEM)和用于截面的聚焦离子束表征。原始纱线的拉伸强度,模量和断裂伸长率分别为0.8 GPa,14 GPa和14.0%。在复合纱线中,这些值分别显着提高到1.2 GPa,68 GPa和3.4%。由于固结和排列的改进,加捻纱和复合纱的电导率分别从1.0×10 S / m(原始纱)增加到5.0×10 S / m和5.3×10 S / m。增强机制归因于DCPD聚合物的粘合,该DCPD聚合物起着绞盘的作用,并增加了纳米管束内的摩擦力,使其更难以拉开。

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