石墨烯溴化:制备低光学损耗高性能透明导电电极的新途径(演示记录)

A. Mansour, A. Amassian, M. Tanielian
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摘要

石墨烯的高透光率、导电性、柔韧性和化学稳定性引起了人们对其作为透明导电电极材料和作为掺杂铟氧化锡的潜在替代品的极大兴趣。然而,目前可用的大规模生产方法,如化学气相沉积,生产多晶石墨烯,并需要额外的转移过程,进一步引入缺陷和杂质,导致其片电阻显着增加。用外来原子掺杂石墨烯已经成为降低其片电阻的一种流行途径,而片电阻通常会在光学传输中造成重大损失。在此,我们报告了石墨烯的溴掺杂成功地产生了空气稳定的透明导电电极,薄片电阻降低高达80%,达到~180 Ω/,代价是在石墨烯层少的情况下光学传输损失2-3%,单层石墨烯时光学传输损失0.8%。在光学透明度方面的非常低的权衡导致了迄今为止报道的最高的优点数字的增强。此外,我们的结果表明,随着溴含量的增加,功函数的增加可控制到0.3 eV。这些结果应该有助于为石墨烯的进一步发展铺平道路,石墨烯有可能成为光电器件中其他透明导电电极的高透明替代品。
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Bromination of graphene: a new route to making high performance transparent conducting electrodes with low optical losses (Presentation Recording)
The high optical transmittance, electrical conductivity, flexibility and chemical stability of graphene have triggered great interest in its application as a transparent conducting electrode material and as a potential replacement for indium doped tin oxide. However, currently available large scale production methods such as chemical vapor deposition produce polycrystalline graphene, and require additional transfer process which further introduces defects and impurities resulting in a significant increase in its sheet resistance. Doping of graphene with foreign atoms has been a popular route for reducing its sheet resistance which typically comes at a significant loss in optical transmission. Herein, we report the successful bromine doping of graphene resulting in air-stable transparent conducting electrodes with up to 80% reduction of sheet resistance reaching ~180 Ω/ at the cost of 2-3% loss of optical transmission in case of few layer graphene and 0.8% in case of single layer graphene. The remarkably low tradeoff in optical transparency leads to the highest enhancements in figure of merit reported thus far. Furthermore, our results show a controlled increase in the workfunction up to 0.3 eV with the bromine content. These results should help pave the way for further development of graphene as potentially a highly transparent substitute to other transparent conducting electrodes in optoelectronic devices.
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