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Highly Efficient n-Type Doping of Graphene by Vacuum Annealed Amine-Rich Macromolecules

机译:富真空胺化大分子对石墨烯的高效n型掺杂

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摘要

Flexible transparent conducting electrodes (FTCE) are an essential component of next-generation flexible optoelectronic devices. Graphene is expected to be a promising material for the FTCE, because of its high transparency, large charge carrier mobilities, and outstanding chemical and mechanical stability. However, the electrical conductivity of graphene is still not good enough to be used as the electrode of an FTCE, which hinders its practical application. In this study, graphene was heavily -type doped while maintaining high transmittance by adsorbing amine-rich macromolecules to graphene. The -type charge-transfer doping of graphene was maximized by increasing the density of free amine in the macromolecule through a vacuum annealing process. The graphene adsorbed with the -type dopants was stacked twice, resulting in a graphene FTCE with a sheet resistance of 38 ohm/sq and optical transmittance of 94.1%. The figure of merit (FoM) of the graphene electrode is as high as 158, which is significantly higher than the minimum standard for commercially available transparent electrodes (FoM = 35) as well as graphene electrodes doped with previously reported chemical doping methods. Furthermore, the -doped graphene electrodes not only show outstanding flexibility but also maintain the doping effect even in high temperature (500 K) and high vacuum (~10 torr) conditions. These results show that the graphene doping proposed in this study is a promising approach for graphene-based next-generation FTCEs.
机译:柔性透明导电电极(FTCE)是下一代柔性光电器件的重要组成部分。石墨烯因其高透明性,大的载流子迁移率以及出色的化学和机械稳定性而有望成为FTCE的有前途的材料。然而,石墨烯的电导率仍不足以用作FTCE的电极,这阻碍了其的实际应用。在这项研究中,石墨烯是重型掺杂的,同时通过将富含胺的大分子吸附到石墨烯上来维持高透射率。通过真空退火工艺增加大分子中游离胺的密度,可以使石墨烯的-型电荷转移掺杂最大化。将吸附有-型掺杂剂的石墨烯堆叠两次,得到具有38 ohm / sq的薄层电阻和94.1%的透光率的石墨烯FTCE。石墨烯电极的品质因数(FoM)高达158,远高于市售透明电极(FoM = 35)以及掺杂有先前报道的化学掺杂方法的石墨烯电极的最低标准。此外,掺杂的石墨烯电极不仅显示出出色的柔韧性,而且即使在高温(500 K)和高真空(〜10 torr)条件下也能保持掺杂效果。这些结果表明,这项研究中提出的石墨烯掺杂是一种基于石墨烯的下一代FTCE的有前途的方法。

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