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Continuous Spinning of a Single-Walled Carbon Nanotube-Nylon Composite Fiber

机译:单壁碳纳米管-尼龙复合纤维的连续纺丝

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摘要

We report a chemical processing technology that allows the continuous spinning of single-walled carbon nanotubes (SWNTs)-nylon 6 (PA6) fibers by the in-situ polymerization of caprolactam in the presence of SWNTs,which simultaneously optimizes the morphology of the composite.We show that caprolactam is an excellent solvent for carboxylic-acid-functionalized SWNTs (SWNT-COOH) and that this allows the efficient dispersal of the SWNTs and subsequent grafting of PA6 chains to the SWNTs through condensation reactions between the carboxylic-acid group on SWNT-COOH and the terminal amine group of PA6.The existence of a graft copolymer between the PA6 chains and the SWNTs is demonstrated by IR,TGA,and AFM studies,and we show that the solubility of the polymerized material in formic acid is controlled by the degree of graft copolymerization.The amount of grafted PA6 chains that are attached to the SWNTs can be adjusted by controlling the concentration of the initiator (6-aminocaproic acid).The process leads to a uniform dispersion of the SWNTs,and the presence of the graft copolymer increases the polymer/SWNT compatibility while strengthening the interfacial interaction between the nanotube and matrix.The Young's modulus,tensile strength,and thermal stability of the SWNT-reinforced composite fibers produced by this process are significantly improved.
机译:我们报告了一种化学处理技术,该技术可以通过在SWNTs的存在下进行己内酰胺的原位聚合来连续纺制单壁碳纳米管(SWNTs)-尼龙6(PA6)纤维,同时优化复合材料的形态。我们表明,己内酰胺是用于羧酸官能化单壁碳纳米管(SWNT-COOH)的极佳溶剂,它可以使单壁碳纳米管有效分散,并随后通过单壁碳纳米管上羧酸基团之间的缩合反应将PA6链接枝到单壁碳纳米管上-COOH和PA6的末端胺基。通过IR,TGA和AFM研究证明了PA6链和SWNT之间存在接枝共聚物,并且我们证明了聚合材料在甲酸中的溶解度受到控制可以通过控制引发剂(6-氨基己酸)的浓度来调节与SWNT连接的PA6接枝PA6链的数量。过程使SWNTs均匀分散,接枝共聚物的存在增加了聚合物/ SWNT的相容性,同时增强了纳米管与基体之间的界面相互作用。SWNT增强复合材料的杨氏模量,拉伸强度和热稳定性通过该方法生产的纤维得到显着改善。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2005年第11期|p.3847-3854|共8页
  • 作者单位

    Center for Nanoscale Science and Engineering,Departments of Chemistry and Chemical & Environmental Engineering,University of California,Riverside,California 92521-0403 and Carbon Solutions,Incorporated,Riverside,California 92506;

    Center for Nanoscale Science and Engineering,Departments of Chemistry and Chemical & Environmental Engineering,University of California,Riverside,California 92521-0403 and Carbon Solutions,Incorporated,Riverside,California 92506;

    Center for Nanoscale Science and Engineering,Departments of Chemistry and Chemical & Environmental Engineering,University of California,Riverside,California 92521-0403 and Carbon Solutions,Incorporated,Riverside,California 92506;

    Center for Nanoscale Science and Engineering,Departments of Chemistry and Chemical & Environmental Engineering,University of California,Riverside,California 92521-0403 and Carbon Solutions,Incorporated,Riverside,California 92506;

    Center for Nanoscale Science and Engineering,Departments of Chemistry and Chemical & Environmental Engineering,University of California,Riverside,California 92521-0403 and Carbon Solutions,Incorporated,Riverside,California 92506;

    Center for Nanoscale Science and Engineering,Departments of Chemistry and Chemical & Environmental Engineering,University of California,Riverside,California 92521-0403 and Carbon Solutions,Incorporated,Riverside,California 92506;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

  • 入库时间 2022-08-18 03:23:49

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