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Self-assembly of graphene onto electrospun polyamide 66 nanofibers as transparent conductive thin films

机译:石墨烯自组装到静电纺制的聚酰胺66纳米纤维上作为透明导电薄膜

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摘要

A simple method was developed to assemble graphite oxide (GO) densely onto electrospun (ES) polyamide 66 (PA66) nanofibrous membranes, used as a guide for the deposition of graphene nanosheet (GNS) conductive networks for preparing transparent conductive thin film (TCF). The main advantage of this technique by comparison with previous methods is that graphene does not form a uniform coating, but a percolated conductive network, when guided by PA66 nanofiber templates. A low surface coverage of the transparent substrate by GNS resulted in high transmittance. Polyvinylpyrrolidone-stabilized GO (PVP-GO) was prepared as a modifier for improving the adsorption to the nanofibers. The resulting PVP-GO material could adsorb well on PA66 nanofibers due to stronger hydrogen bonds. Hence, a lower sufficient concentration of PVP-GO (0.050wt%) solution was required than that for GO solution (0.100wt%) to fabricate a complete conductive path through a possible enriched adsorption process. For TCF applications, a reduction step is essential because as-deposited GO is non-conductive. In this work, we reduced GO to GNS by a combination of chemical reduction and thermal annealing. The TCF optical transmittance also could be improved after thermal annealing at 350 °C above the PA66 melting point. Light scattering by PA66 nanofibers was found as the main cause of reduced transmittance. A fused film, obtained after electrospinning PA66 solution for 120s, and immersing in 0.050wt% PVP-GO solution, exhibits a surface resistance of 8.6 × 10 ~3δ, while maintaining 88% light transmittance.
机译:开发了一种简单的方法来将氧化石墨(GO)密集地组装到电纺(ES)聚酰胺66(PA66)纳米纤维膜上,用作沉积石墨烯纳米片(GNS)导电网络以制备透明导电薄膜(TCF)的指南。与以前的方法相比,该技术的主要优势在于,在PA66纳米纤维模板的引导下,石墨烯不会形成均匀的涂层,而是渗透的导电网络。 GNS对透明基板的低表面覆盖率导致高透射率。制备了聚乙烯吡咯烷酮稳定的GO(PVP-GO)作为改进剂,以改善对纳米纤维的吸附。由于较强的氢键,所得的PVP-GO材料可以很好地吸附在PA66纳米纤维上。因此,需要比GO溶液(0.100wt%)更低的PVP-GO(0.050wt%)溶液浓度,以通过可能的富集吸附过程制造一条完整的导电路径。对于TCF应用,还原步骤是必不可少的,因为沉积的GO是不导电的。在这项工作中,我们通过化学还原和热退火相结合将GO还原为GNS。在高于PA66熔点350°C的温度下进行热退火后,TCF的透光率也可以提高。发现PA66纳米纤维的光散射是透射率降低的主要原因。将PA66溶液静电纺丝120s,然后浸入0.050wt%PVP-GO溶液中后得到的熔融膜的表面电阻为8.6×10〜3δ,同时保持88%的透光率。

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