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Processing, spinning, and fabrication of continuous fibers of single-walled carbon nanotubes

机译:单壁碳纳米管连续纤维的加工,纺丝和制造

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摘要

Single-walled carbon nanotubes (SWNTs) show great promise for use in a wide range of applications. One of the most promising avenues for attaining these applications is the dispersion of SWNTs at high concentrations in superacids and processing into macroscopic articles such as fibers or films. Fibers spun from SWNT/superacid dispersions indicate that the morphology of the starting SWNT material influences the final morphology of the as-spun fiber. Here, we describe a method (termed disentanglement) of dispersing SWNTs in superacids and treating them using a high-shear, rotor/stator homogenizer, followed by coagulation to recover the solid SWNT material for use in fiber spinning. Several lines of experimental evidence (rheology and optical microscopy of the SWNTs in solution, scanning electron microscopy (SEM) of the coagulated material, and SEM of fibers spun from the coagulated material) show that this disentanglement treatment radically improves the degree of alignment in the SWNTs' morphology, which in turn improves the dispersibility and processability. Raman microscopy and thermogravimetric analysis (TGA) before and after homogenization show that the treatment does not damage the SWNTs. Although this technique is particularly important as a pre-processing step for fiber spinning of neat SWNT fibers, it is also useful for neat SWNT films, SWNT/polymer composites, and surfactant- or polymer-stabilized SWNT dispersions.Macroscopic neat SWNT fibers were successfully produced and characterized. Studies on coagulated fiber morphology suggest that slow acid removal is crucial to minimizing voids. Better SWNT coalescence and alignment were obtained by using appropriate coagulant and dope concentration. SWNTs were disentangled and dissolved at high concentrations (8 - 10 wt%) in 102% sulfuric acid. Fibers were subsequently extruded by dry-jet wet spinning into ice water and polyvinyl alcohol (PVA) / ice water. Drawing the fiber continuously while spinning further aligned the SWNTs within the fiber. The use of PVA ( 1%) in the coagulant slowed acid removal allowing better SWNT coalescence without damaging the SWNT electrical properties. The resulting combination of pre-processing and fiber drawing shows a threefold improvement in fiber tensile strength.
机译:单壁碳纳米管(SWNT)具有广阔的应用前景。实现这些应用的最有希望的途径之一是将高浓度的单壁碳纳米管在超强酸中分散并加工成宏观制品,例如纤维或薄膜。从SWNT /超强酸分散体纺制的纤维表明,起始SWNT材料的形态会影响初纺纤维的最终形态。在这里,我们描述了一种将SWNTs分散在过酸中并使用高剪切转子/定子均质器对其进行处理,然后进行凝聚以回收用于纤维纺丝的固体SWNT材料的方法(称为解缠结)。几行实验证据(溶液中SWNT的流变学和光学显微镜,凝结材料的扫描电子显微镜(SEM)以及从凝结材料纺出的纤维的SEM)表明,这种解缠结处理从根本上改善了SNT的排列程度。单壁碳纳米管的形态,进而改善了分散性和可加工性。匀浆前后的拉曼显微镜和热重分析(TGA)表明,该处理不会损坏SWNT。尽管此技术对于纯净SWNT纤维的纤维纺丝的预处理步骤特别重要,但它也可用于纯净SWNT薄膜,SWNT /聚合物复合材料以及表面活性剂或聚合物稳定的SWNT分散体。生产和表征。对凝固纤维形态的研究表明,缓慢的酸去除对于最小化空隙至关重要。通过使用适当的凝结剂和浓液浓度可以获得更好的SWNT聚结和排列。将SWNT解开并以高浓度(8-10wt%)溶解在102%硫酸中。随后通过干喷湿纺将纤维挤出到冰水和聚乙烯醇(PVA)/冰水中。在纺丝的同时连续拉伸纤维,进一步使SWNT在纤维内对齐。在凝结剂中使用PVA(<1%)可以减缓酸的去除,从而实现更好的SWNT聚结而不会损害SWNT的电性能。预处理和纤维拉伸的结果相结合,表明纤维的拉伸强度提高了三倍。

著录项

  • 作者

    Booker Richard DeLane;

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  • 年度 2010
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  • 原文格式 PDF
  • 正文语种 eng
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