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Strong Carbon Nanotube Fibers by Drawing Inspiration from Polymer Fiber Spinning

机译:从聚合物纤维纺丝中汲取灵感,制成强碳纳米管纤维

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We present a method to spin highly oriented continuous fibers of adjustable carbon nanotube (CNT) type, with mechanical properties in the high-performance range. By lowering the concentration of nanotubes in the gas phase, through either reduction of the precursor feed rate or increase in carrier gas flow rate, the density of entanglements is reduced and the (CNT aerogel can thus be drawn (up to 18 draw ratio) and wound at fast rates (>50 m/min). This is achieved without affecting the synthesis process, as demonstrated by Raman spectroscopy, and implies that the parameters controlling composition in terms of CNT diameter and number of layers are decoupled from those fixing CNT orientation. Applying polymer fiber wet-spinning principles then, strong CNT fibers (1 GPa/SG) are produced under dilute conditions and high draw ratios, corresponding to highly aligned fibers (from wide- and small-angle X-ray scattering). This is demonstrated for fibers either made up of predominantly single-wall CNTs (SWCNTs) or predominantly multiwall CNTs (MWCNTs), which surprisingly have very similar tensile properties. Finally, we show that postspin densification has no substantial effect on either alignment or properties (mechanical and electrical). These results demonstrate a route to control CNT assembly and reinforce their potential as a high-performance fiber.
机译:我们提出了一种旋转可调节碳纳米管(CNT)类型的高取向连续纤维的方法,其机械性能处于高性能范围内。通过降低气相中纳米管的浓度,可通过降低前驱物进料速率或增加载气流速来降低缠结密度,从而可以拉伸(CNT气凝胶的拉伸比(最高为18的拉伸比))。以快速速率(> 50 m / min)缠绕,这是在不影响合成过程的情况下实现的,如拉曼光谱法所表明的,这意味着控制CNT直径和层数组成的参数与固定CNT取向的参数脱钩然后,采用聚合物纤维湿纺原理,在稀薄条件下以高拉伸比生产出坚固的CNT纤维(1 GPa / SG),对应于高度对齐的纤维(来自广角和小角度X射线散射)。证明了主要由单壁CNT(SWCNT)或主要由多壁CNT(MWCNT)组成的纤维,它们具有非常相似的拉伸性能。对对准或特性(机械和电气)均无实质影响。这些结果证明了控制CNT组装并增强其作为高性能纤维的潜力的途径。

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