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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Shear-induced preferential alignment of carbon nanotubes resulted in anisotropic electrical conductivity of polymer composites
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Shear-induced preferential alignment of carbon nanotubes resulted in anisotropic electrical conductivity of polymer composites

机译:剪切诱导的碳纳米管优先取向导致聚合物复合材料的各向异性电导率

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Multiwalled carbon nanotubes were used as filler to furan resin in the aim of producing an electrically conducting polymer composite that may be useful for electrode applications. The orientation of the nanotubes is controlled to prepare a composite with fillers unidi-rectionally oriented, which may result in higher electrical conductivity at one direction and at lower nanotube loading. Using the doctor blade technique, composite films were prepared and the alignment and its effect on the electrical conductivity of the composite were investigated. It was found that the doctor blade technique induced preferential alignment of the nanotubes in composite and a higher degree of alignment is achieved in composites with lower contents of nanotubes. Also, for low contents of nanotubes, the electrical conductivity of the composite with preferentially aligned nanotubes was up to a million times higher in the direction of alignment compared to that of the composite with randomly oriented nanotubes; however, at higher contents of nanotubes, this effect was diminished. The preferential alignment of the nanotubes also caused anisotropic electrical conductivity. The alignment and distribution is thought to create more junctions between nanotubes that resulted into the formation of more conducting channels in the polymer matrix parallel to blading direction.
机译:为了生产可用于电极应用的导电聚合物复合材料,将多壁碳纳米管用作呋喃树脂的填料。控制纳米管的取向以制备具有单向取向的填料的复合材料,这可以导致在一个方向上的较高电导率和较低的纳米管负载。使用刮刀技术制备了复合膜,并研究了取向及其对复合材料电导率的影响。发现刮刀技术引起复合物中的纳米管的优先取向,并且在具有较低纳米管含量的复合物中实现了较高的取向度。同样,对于低含量的纳米管,与具有随机取向的纳米管的复合物相比,具有优先排列的纳米管的复合物的电导率在排列方向上高达百万倍。但是,在纳米管含量较高时,这种作用减弱了。纳米管的优先排列还引起各向异性的导电性。据认为,排列和分布在纳米管之间产生更多的连接,这导致在聚合物基质中平行于叶片方向的更多导电通道的形成。

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