Allen Ranulfo, Pan Lijia, Fuller Gerald G, Bao Zhenan
Department of Chemical Engineering, Stanford University , Stanford, California 94305-5025, United States.
ACS Appl Mater Interfaces. 2014 Jul 9;6(13):9966-74. doi: 10.1021/am5019995. Epub 2014 Jun 23.
Single-walled carbon nanotubes/polymer composites typically have limited conductivity due to a low concentration of nanotubes and the insulating nature of the polymers used. Here we combined a method to align carbon nanotubes with in-situ polymerization of conductive polymer to form composite films and fibers. Use of the conducting polymer raised the conductivity of the films by 2 orders of magnitude. On the other hand, CNT fiber formation was made possible with in-situ polymerization to provide more mechanical support to the CNTs from the formed conducting polymer. The carbon nanotube/conductive polymer composite films and fibers had conductivities of 3300 and 170 S/cm, respectively. The relatively high conductivities were attributed to the polymerization process, which doped both the SWNTs and the polymer. In-situ polymerization can be a promising solution-processable method to enhance the conductivity of carbon nanotube films and fibers.
由于纳米管浓度低以及所用聚合物的绝缘性质,单壁碳纳米管/聚合物复合材料的导电性通常有限。在此,我们将一种使碳纳米管排列的方法与导电聚合物的原位聚合相结合,以形成复合薄膜和纤维。导电聚合物的使用使薄膜的导电性提高了两个数量级。另一方面,原位聚合使得碳纳米管纤维的形成成为可能,从而由形成的导电聚合物为碳纳米管提供更多的机械支撑。碳纳米管/导电聚合物复合薄膜和纤维的电导率分别为3300 S/cm和170 S/cm。相对较高的电导率归因于聚合过程,该过程使单壁碳纳米管和聚合物都发生了掺杂。原位聚合可能是一种很有前景的可溶液加工方法,可提高碳纳米管薄膜和纤维的导电性。