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Extraordinary improvement of the graphitic structure of continuous carbon nanofibers templated with double wall carbon nanotubes

机译:以双壁碳纳米管为模板的连续碳纳米纤维的石墨结构的非凡改进

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Carbon nanotubes are being widely studied as a reinforcing element in high-performance composites and fibers at high volume fractions. However, problems with nanotube processing, alignment, and non-optimal stress transfer between the nanotubes and surrounding matrix have so far prevented full utilization of their superb mechanical properties in composites. Here, we present an alternative use of carbon nanotubes, at a very small concentration, as a templating agent for the formation of graphitic structure in fibers. Continuous carbon nanofibers (CNF) were manufactured by electrospinning from polyacrylonitrile (PAN) with 1.2% of double wall nanotubes (DWNT). Nanofibers were oxidized and carbonized at temperatures from 600 C to 1850 C. Structural analyses revealed significant improvements in graphitic structure and crystal orientation in the templated CNFs, with the largest improvements observed at lower carbonization temperatures. In situ pull-out experiments showed good interfacial bonding between the DWNT bundles and the surrounding templated carbon matrix. Molecular Dynamics (MD) simulations of templated carbonization confirmed oriented graphitic growth and provided insight into mechanisms of carbonization initiation. The obtained results indicate that global templating of the graphitic structure in fine CNFs can be achieved at very small concentrations of well-dispersed DWNTs. The outcomes reveal a simple and inexpensive route to manufacture continuous CNFs with improved structure and properties for a variety of mechanical and functional applications. The demonstrated improvement of graphitic order at low carbonization temperatures in the absence of stretch shows potential as a promising new manufacturing technology for next generation carbon fibers.
机译:碳纳米管作为高性能复合材料和纤维中高体积分数的增强元素已被广泛研究。然而,迄今为止,纳米管加工,排列和纳米管与周围基质之间应力传递不理想的问题已经阻止了它们在复合材料中的出色机械性能的充分利用。在这里,我们提出了碳纳米管的一种非常低浓度的替代用途,它可以作为模板剂在纤维中形成石墨结构。连续碳纳米纤维(CNF)是由聚丙烯腈(PAN)与1.2%的双壁纳米管(DWNT)进行电纺丝而成的。纳米纤维在600°C至1850°C的温度下被氧化和碳化。结构分析显示,模板化CNF中石墨结构和晶体取向显着改善,在较低的碳化温度下观察到最大的改善。原位拉出实验表明DWNT束与周围的模板碳基质之间具有良好的界面结合。模板碳化的分子动力学(MD)模拟确认了石墨的定向生长,并提供了碳化引发机理的见解。获得的结果表明,在非常分散的DWNT浓度非常低的情况下,可以在精细CNF中实现石墨结构的整体模板化。结果揭示了一种简单,廉价的生产连续CNF的方法,该CNF具有改进的结构和性能,适用于各种机械和功能应用。在没有拉伸的情况下,在低碳化温度下已证明的石墨顺序改善,显示出作为下一代碳纤维的有前途的新制造技术的潜力。

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