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Graphene Nanoplatelet (GNPs) Doped Carbon Nanofiber (CNF) System: Effect of GNPs on the Graphitic Structure of Creep Stress and Non-Creep Stress Stabilized Polyacrylonitrile (PAN)

机译:石墨烯纳米血小板(GNP)掺杂碳纳米纤维(CNF)系统:GNP对蠕变应力和非蠕变稳定聚丙烯腈(PAN)石墨结构的影响

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摘要

Improving the graphitic structure in carbon nanofibers (CNFs) is important for exploiting their potential in mechanical, electrical and electrochemical applications. Typically, the synthesis of carbon fibers with a highly graphitized structure demands a high temperature of almost 2500 °C. Furthermore, to achieve an improved graphitic structure, the stabilization of a precursor fiber has to be assisted by the presence of tension in order to enhance the molecular orientation. Keeping this in view, herein we report on the fabrication of graphene nanoplatelets (GNPs) doped carbon nanofibers using electrospinning followed by oxidative stabilization and carbonization. The effect of doping GNPs on the graphitic structure was investigated by carbonizing them at various temperatures (1000 °C, 1200 °C, 1500 °C and 1700 °C). Additionally, a stabilization was achieved with and without constant creep stress (only shrinkage stress) for both pristine and doped precursor nanofibers, which were eventually carbonized at 1700 °C. Our findings reveal that the GNPs doping results in improving the graphitic structure of polyacrylonitrile (PAN). Further, in addition to the templating effect during the nucleation and growth of graphitic crystals, the GNPs encapsulated in the PAN nanofiber matrix act in-situ as micro clamp units performing the anchoring function by preventing the loss of molecular orientation during the stabilization stage, when no external tension is applied to nanofiber mats. The templating effect of the entire graphitization process is reflected by an increased electrical conductivity along the fibers. Simultaneously, the electrical anisotropy is reduced, i.e., the GNPs provide effective pathways with improved conductivity acting like bridges between the nanofibers resulting in an improved conductivity across the fiber direction compared to the pristine PAN system.
机译:改善碳纳米纤维(CNF)中的石墨结构对于开发其在机械,电气和电化学应用中的潜力很重要。通常,具有高度石墨化的结构的碳纤维的合成需要接近2500℃的高温。此外,为了获得改进的石墨结构,必须通过张力的存在来辅助前体纤维的稳定化,以增强分子取向。考虑到这一点,在此我们报道了使用电纺丝然后进行氧化稳定化和碳化来制备石墨烯纳米片(GNP)掺杂的碳纳米纤维的过程。通过在各种温度下(1000°C,1200°C,1500°C和1700°C)碳化GNP,研究了掺杂GNP对石墨结构的影响。另外,对于原始的和掺杂的前体纳米纤维,在有和没有恒定蠕变应力(仅收缩应力)的情况下都实现了稳定化,最终在1700°C下碳化。我们的发现表明,GNP掺杂可改善聚丙烯腈(PAN)的石墨结构。此外,除了在石墨晶体的成核和生长过程中的模板效应外,封装在PAN纳米纤维基质中的GNP还可以通过防止稳定阶段分子取向的丧失而原位发挥微锚单元的作用,从而起到锚固功能。没有外部张力施加到纳米纤维垫上。整个石墨化过程的模板效果通过沿纤维的电导率增加得以反映。同时,电各向异性减小,即,与原始PAN系统相比,GNP提供了具有改善的电导率的有效途径,就像纳米纤维之间的桥一样,从而导致在纤维方向上的改善的电导率。

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