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Cyclic chlorine trap-doping for transparent, conductive, thermally stable and damage-free graphene

机译:环氯trap-doping为透明的,导电,耐热和免受伤害石墨烯

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摘要

We propose a novel doping method of graphene using the cyclic trap-doping method with low energy chlorine adsorption. Low energy chlorine adsorption for graphene chlorination avoided defect (D-band) formation during the doping by maintaining the π-bonding of the graphene, which affects conductivity. In addition, by trapping chlorine dopants between the graphene layers, the sheet resistance could be decreased by ~88% under optimized conditions. Among the reported doping methods, including chemical, plasma, and photochemical methods, the proposed doping method is believed to be the most promising for producing graphene with extremely high transmittance, low sheet resistance, high thermal stability, and high flexibility for use in various flexible electronic devices. The results of Raman spectroscopy and sheet resistance showed that this method is also non-destructive and controllable. The sheet resistance of the doped tri-layer graphene was 70 Ω per sq. at transmittance of 94%, and which was maintained for more than 100 h in a vacuum at 230 °C. Moreover, the defect intensity of graphene was not increased during the cyclic trap-doping.
机译:我们提出一个新颖的掺杂石墨烯的方法使用循环trap-doping方法较低的能量氯吸附。吸附在石墨烯氯化避免在掺杂的缺陷(d带)的形成维护π键的石墨烯,影响导电率。石墨烯层之间的氯掺杂物,薄层电阻可以减少了~ 88%以下优化条件。方法,包括化学、等离子体和光化学方法,提出掺杂方法被认为是最有前途的生产与极高的石墨烯透光率、低表面电阻、高的热用于稳定和高灵活性各种灵活的电子设备。拉曼光谱和薄层电阻这方法也非破坏性和可控。tri-layer石墨烯是每平方70Ω。透光率94%,这是维护在真空中超过100 h在230°C。此外,石墨烯的缺陷密度在循环trap-doping不会增加。

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