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室温下单分子层自组装有机分子在外延石墨烯上的分子分辨率特性研究。

Room-temperature molecular-resolution characterization of self-assembled organic monolayers on epitaxial graphene.

机构信息

Department of Materials Science and Engineering, Northwestern University, Evanston, Illinois 60208, USA.

出版信息

Nat Chem. 2009 Jun;1(3):206-11. doi: 10.1038/nchem.212. Epub 2009 May 17.

Abstract

Graphene, a two-dimensional sheet of carbon atoms, is a promising material for next-generation technology because of its advantageous electronic properties, such as extremely high carrier mobilities. However, chemical functionalization schemes are needed to integrate graphene with the diverse range of materials required for device applications. In this paper, we report self-assembled monolayers of the molecular semiconductor perylene-3,4,9,10-tetracarboxylic dianhydride (PTCDA) formed on epitaxial graphene grown on the SiC(0001) surface. The molecules possess long-range order with a herringbone arrangement, as shown by ultra-high vacuum scanning tunnelling microscopy at room temperature. The molecular ordering is unperturbed by defects in the epitaxial graphene or atomic steps in the underlying SiC surface. Scanning tunnelling spectra of the PTCDA monolayer show distinct features that are not observed on pristine graphene. The demonstration of robust, uniform organic functionalization of epitaxial graphene presents opportunities for graphene-based molecular electronics and sensors.

摘要

石墨烯是一种由碳原子组成的二维薄片,由于其具有极高的载流子迁移率等优越的电子特性,有望成为下一代技术的材料。然而,为了将石墨烯与器件应用所需的各种材料集成,需要进行化学功能化方案。在本文中,我们报告了在 SiC(0001) 表面上生长的外延石墨烯上形成的分子半导体苝-3,4,9,10-四羧酸二酐(PTCDA)的自组装单层。正如在室温下的超高真空扫描隧道显微镜下所显示的,这些分子具有具有准一维结构的准有序排列。分子有序性不受外延石墨烯中的缺陷或下面 SiC 表面的原子台阶的干扰。PTCDA 单层的扫描隧道谱显示出在原始石墨烯上未观察到的明显特征。外延石墨烯上坚固、均匀的有机功能化的演示为基于石墨烯的分子电子学和传感器提供了机会。

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