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Fabrication of conductive polymer nanofibers through SWNT supramolecular functionalization and aqueous solution processing

机译:通过SWNT超分子功能化和水溶液加工制备导电聚合物纳米纤维

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Polymeric thin films and nanostructured composites with excellent electrical properties are required for the development of advanced optoelectronic devices, flexible electronics, wearable sensors, and tissue engineering scaffolds. Because most polymers available for fabrication are insulating, one of the biggest challenges remains the preparation of inexpensive polymer composites with good electrical conductivity. Among the nanomaterials used to enhance composite performance, single walled carbon nanotubes (SWNTs) are ideal due to their unique physical and electrical properties. Yet, a barrier to their widespread application is that they do not readily disperse in solvents traditionally used for polymer processing. In this study, we employed supramolecular functionalization of SWNTs with a conjugated polyelectrolyte as a simple approach to produce stable aqueous nanotube suspensions, that could be effortlessly blended with the polymer poly(ethyleneoxide) (PEO). The homogeneous SWNT: PEO mixtures were used to fabricate conductive thin films and nanofibers with improved conductivities through drop casting and electrospinning. The physical characterization of electrospun nanofibers through Raman spectroscopy and SEM revealed that the SWNTs were uniformly incorporated throughout the composites. The electrical characterization of SWNT: PEO thin films allowed us to assess their conductivity and establish a percolation threshold of 0.1 wt% SWNT. Similarly, measurement of the nanofiber conductivity showed that the electrospinning process improved the contact between nanotube complexes, resulting in conductivities in the S m(-1) range with much lower weight loading of SWNTs than their thin film counterparts. The methods reported for the fabrication of conductive nanofibers are simple, inexpensive, and enable SWNT processing in aqueous solutions, and offer great potential for nanofiber use in applications involving flexible electronics, sensing devices, and tissue engineering scaffolds.
机译:开发先进的光电器件,柔性电子器件,可穿戴传感器和组织工程支架需要具有优异电性能的聚合物薄膜和纳米结构复合材料。因为大多数可用于制造的聚合物都是绝缘的,所以最大的挑战之一仍然是制备具有良好电导率的廉价聚合物复合材料。在用于增强复合材料性能的纳米材料中,单壁碳纳米管(SWNT)由于其独特的物理和电气特性而非常理想。然而,其广泛应用的障碍是它们不容易分散在传统上用于聚合物加工的溶剂中。在这项研究中,我们采用共轭聚电解质将SWNTs的超分子功能化作为生产稳定的水性纳米管悬浮液的简单方法,可以轻松地将其与聚合物聚环氧乙烷(PEO)混合。均质的SWNT:PEO混合物用于通过滴铸和电纺丝来制备具有改善的导电性的导电薄膜和纳米纤维。通过拉曼光谱和SEM对电纺纳米纤维的物理表征表明,SWNTs均匀地掺入了整个复合材料中。 SWNT的电学特性:PEO薄膜使我们能够评估其电导率,并建立0.1 wt%SWNT的渗滤阈值。类似地,对纳米纤维电导率的测量表明,电纺丝过程改善了纳米管复合物之间的接触,从而导致电导率在S m(-1)范围内,而SWNT的重量负载远低于薄膜电导率。报道的用于制造导电纳米纤维的方法简单,便宜,并且能够在水溶液中进行SWNT处理,并且为涉及柔性电子,传感设备和组织工程支架的应用中的纳米纤维提供了巨大的潜力。

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