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一步法制备石墨烯-金属杂化透明导电薄膜。

Single-step formation of a graphene-metal hybrid transparent and electrically conductive film.

机构信息

Department of Materials Science and Engineering, Seoul National University, 599 Gwanak-ro, Gwanak-gu, Seoul 151-742, Korea.

出版信息

Nanotechnology. 2012 Mar 23;23(11):115301. doi: 10.1088/0957-4484/23/11/115301.

Abstract

We report here a rapid (10 s of heating) graphene growth method that can be carried out on any desired substrate, including an insulator, thus negating the need for the transfer from the metal substrate. This technique is based on metal-induced crystallization of amorphous carbon (a-C) to graphene, and involves an ultra-thin metal layer that is less than 10 nm in thickness. Rapid annealing of a bilayer of a-C and metal deposited on the surface leads to the formation of graphene film, and to subsequent breaking-up of the thin metal layer underneath the film, thus resulting in the formation of a graphene–metal hybrid film which is both transparent and electrically conducting. Based on Raman studies, we have also systematically compared ultra-thin metal-induced crystallization behavior with a case of conventional thick metal. Based on the present investigation, it was observed that the dominant growth mechanism in ultra-thin metal-induced crystallization is nucleation controlled.

摘要

我们在这里报告一种快速(加热 10 秒)的石墨烯生长方法,该方法可在任何所需的基底上进行,包括绝缘体,从而无需从金属基底上进行转移。该技术基于非晶碳(a-C)向石墨烯的金属诱导结晶,涉及厚度小于 10nm 的超薄金属层。在表面上沉积的 a-C 和金属的双层快速退火导致石墨烯膜的形成,并随后在膜下方的薄金属层破裂,从而形成透明且导电的石墨烯-金属混合膜。基于拉曼研究,我们还系统地比较了超薄金属诱导结晶与传统厚金属的行为。根据本研究的结果,观察到超薄金属诱导结晶中的主要生长机制是成核控制。

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