首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Low temperature growth of carbon nanotubes on carbon fibre to create a highly networked fuzzy fibre reinforced composite with superior electrical conductivity
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Low temperature growth of carbon nanotubes on carbon fibre to create a highly networked fuzzy fibre reinforced composite with superior electrical conductivity

机译:碳纳米管在碳纤维上的低温生长,以创建具有优异导电性的高度网络化的模糊纤维增强复合材料

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We report a method for the growth of carbon nanotubes on carbon fibre using a low temperature growth technique which is infused using a standard industrial process, to create a fuzzy fibre composite with enhanced electrical characteristics. Conductivity tests reveal improvements of 510% in the out-of-plane and 330% in the in-plane direction for the nano-composite compared to the reference composite. Further analysis of current-voltage (I-V) curves confirm a transformation in the electron transport mechanism from charge - hopping in the conventional material, to an Ohmic diffusive mechanism for the carbon nano-tube modified composite. Single fibre tensile tests reveal a tensile performance decrease of only 9.7% after subjecting it to our low temperature carbon nanotube growth process, which is significantly smaller than previous reports. Our low-temperature growth process uses substrate water-cooling to maintain the bulk of the fibre material at lower temperatures, whilst the catalyst on the surface of the carbon fibre is at optimally higher temperatures required for carbon nanotube growth. The process is large-area production compatible with bulk-manufacturing of carbon fibre polymer composites.
机译:我们报告了一种使用低温生长技术在碳纤维上生长碳纳米管的方法,该技术采用标准工业工艺注入,以创建具有增强电特性的模糊纤维复合材料。电导率测试表明,与参考复合材料相比,纳米复合材料的面外方向改善了510%,面内方向改善了330%。电流-电压(I-V)曲线的进一步分析证实了电子传输机理从常规材料中的电荷跃变转变为碳纳米管改性复合材料的欧姆扩散机理。单纤维拉伸试验表明,经过我们的低温碳纳米管生长过程后,其拉伸性能仅下降了9.7%,这比以前的报道要小得多。我们的低温生长过程使用基材水冷来将大部分纤维材料保持在较低的温度下,而碳纤维表面上的催化剂处于碳纳米管生长所需的最佳高温下。该方法是大面积生产,与碳纤维聚合物复合材料的批量生产兼容。

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