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用于可拉伸透明电极的石墨烯薄膜的大规模图案生长。

Large-scale pattern growth of graphene films for stretchable transparent electrodes.

作者信息

Kim Keun Soo, Zhao Yue, Jang Houk, Lee Sang Yoon, Kim Jong Min, Kim Kwang S, Ahn Jong-Hyun, Kim Philip, Choi Jae-Young, Hong Byung Hee

机构信息

Department of Chemistry, Sungkyunkwan University, Suwon 440-746, Korea.

出版信息

Nature. 2009 Feb 5;457(7230):706-10. doi: 10.1038/nature07719. Epub 2009 Jan 14.

Abstract

Problems associated with large-scale pattern growth of graphene constitute one of the main obstacles to using this material in device applications. Recently, macroscopic-scale graphene films were prepared by two-dimensional assembly of graphene sheets chemically derived from graphite crystals and graphene oxides. However, the sheet resistance of these films was found to be much larger than theoretically expected values. Here we report the direct synthesis of large-scale graphene films using chemical vapour deposition on thin nickel layers, and present two different methods of patterning the films and transferring them to arbitrary substrates. The transferred graphene films show very low sheet resistance of approximately 280 Omega per square, with approximately 80 per cent optical transparency. At low temperatures, the monolayers transferred to silicon dioxide substrates show electron mobility greater than 3,700 cm(2) V(-1) s(-1) and exhibit the half-integer quantum Hall effect, implying that the quality of graphene grown by chemical vapour deposition is as high as mechanically cleaved graphene. Employing the outstanding mechanical properties of graphene, we also demonstrate the macroscopic use of these highly conducting and transparent electrodes in flexible, stretchable, foldable electronics.

摘要

与石墨烯大规模图案化生长相关的问题是将这种材料用于器件应用的主要障碍之一。最近,通过对由石墨晶体和氧化石墨烯化学衍生而来的石墨烯片进行二维组装制备了宏观尺度的石墨烯薄膜。然而,发现这些薄膜的薄层电阻远大于理论预期值。在此,我们报告了利用化学气相沉积在薄镍层上直接合成大规模石墨烯薄膜的方法,并展示了两种对薄膜进行图案化以及将其转移到任意衬底上的不同方法。转移后的石墨烯薄膜显示出非常低的薄层电阻,约为每平方280欧姆,光学透明度约为80%。在低温下,转移到二氧化硅衬底上的单层石墨烯表现出大于3700 cm² V⁻¹ s⁻¹ 的电子迁移率,并呈现出半整数量子霍尔效应,这意味着通过化学气相沉积生长的石墨烯质量与机械剥离的石墨烯一样高。利用石墨烯出色的机械性能,我们还展示了这些高导电性和透明电极在柔性、可拉伸、可折叠电子产品中的宏观应用。

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