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Using the carbon nanotube (CNT) /CNT interaction to obtain Hybrid Conductive Nanostructures

机译:使用碳纳米管(CNT)/ CNT相互作用以获得杂化导电纳米结构

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Carbon nanotubes (CNTs) combine unique physical, electrical, chemical, thermal and mechanical properties with a huge surface area that qualify them to a broad range of applications. These potential applications, however, are often limited due to the strong inter-tubes van der Waals interactions, which results in poor dispersion in polymeric matrixes or solvents in general. Thus, the goal of this work was to use this limitation as an advantage, to produce novel conductive hybrid nanostructures, which consist of nonwoven Nylon 6 (PA6) mats of electrospun nanofibers with a large amount of multiwall carbon nanotubes (MWCNT) strongly attached and adsorbed on the nanofibers' surfaces. To produce such structures, the MWCNT were previously functionalized with carboxylic groups and subsequently incorporated in the nanofibers by two subsequent steps: i) preparation of nonwoven mats of PA6/MWCNT by electrospinning and ii) treatment of the mats in an aqueous dispersion of MWCNT/Triton X-100. Analyses of UV-visible light showed that carboxylic groups were actually inserted in the MWCNT. Thermogravimetric analyzes (TGA) showed that the amount of adsorbed MWCNT on the fibers' surfaces at the end of the procedure was approximately 12 times higher than after the first step. Micrographs obtained by scanning electron microscopy (SEM) confirmed this result and electrical conductivities measurements of the MWCNT/PA6, after the treatment in the aqueous solution, showed that these structures had conductivity of 10-2 S/m. It was concluded that the adhesion of CNTs at the surface of the nanofibers occurred due a combination of two types of bonding: hydrogen bonds between the carboxylic groups of the functionalized CNT and the PA6 and van der Waals interactions between the CNTs.
机译:碳纳米管(CNT)将独特的物理,电气,化学,热和机械性能与巨大的表面积相结合,使其符合广泛的应用。然而,这些潜在的应用通常由于较强的管内范德瓦尔斯相互作用而受到限制,这导致聚合物基质或溶剂中的差。因此,这项工作的目的是利用这种限制作为一个优点,生产新的导电杂合纳米结构,其由电纺纳米纤维的非织造尼龙6(PA6)垫组成,具有大量的多壁碳纳米管(MWCNT)强烈附着吸附在纳米纤维表面上。为了产生这种结构,先前用羧基官能化,随后通过两种后续步骤掺入纳米纤维中:i)通过静刺刺激和II)在MWCNT水分散中的垫子处理PA6 / MWCNT的非织造垫。 Triton X-100。 UV可见光的分析显示,羧基实际上插入MWCNT中。热重分析(TGA)表明,在步骤结束时纤维表面上的吸附MWCNT的量大约比第一步之后的12倍。通过扫描电子显微镜(SEM)获得的显微照片证实了在水溶液中处理后MWCNT / PA6的MWCNT / PA6的电导率测量,表明这些结构具有10-2S / m的电导率。得出结论:CNT在纳米纤维表面在纳米纤维表面的粘附性由于两种类型的键合:官能化CNT的羧基与CNT之间的PA6和van der Wa的相互作用之间的氢键。

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