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6H-SiC(0001) 衬底上单层和多层石墨烯的生长动力学。

Growth dynamics and kinetics of monolayer and multilayer graphene on a 6H-SiC(0001) substrate.

机构信息

Physics Department, National University of Singapore, 2 Science Drive 3, Singapore 117542.

出版信息

Phys Chem Chem Phys. 2010 Nov 7;12(41):13522-33. doi: 10.1039/b927452a. Epub 2010 Sep 20.

Abstract

Using Scanning Tunnelling Microscopy (STM), the transformation from the commonly known carbon-rich (6√3×6√3)R30° reconstructed surface to graphene on the 6H-SiC(0001) substrate is systematically investigated with the aid of adsorbing cobalt (Co) which acts as a tracer to map the evolution of these surfaces. The formation of graphene is observed to begin from the step-edges as Si desorption occurs and the growth process continues akin to that of a step flow growth mode. Analysis of the surface step-height evolution at various stages of graphitization shows that as the initial (6√3×6√3)R30° surface converts to form graphene, three Si-C bilayers beneath collapse to regenerate a C-rich structure which also has a (6√3×6√3)R30° periodicity at the interface between graphene and the SiC bulk. Based on these observations, a structural mechanism for the growth of mono- and multilayer graphene is proposed. In addition, we also examine the rate at which the initial (6√3×6√3)R30° surface coverts to graphene as a function of time and temperature. Kinetic analysis of the growth process reveals that the transformation occurs with an activation energy of 3.0 ± 0.4 eV, a value close to the breaking of a Si-C bond.

摘要

使用扫描隧道显微镜(STM),在吸附钴(Co)的辅助下,系统地研究了从常见的富碳(6√3×6√3)R30°重构表面到 6H-SiC(0001)衬底上石墨烯的转变,钴作为示踪剂来绘制这些表面的演化。观察到石墨烯的形成始于硅脱附时的台阶边缘,并且生长过程类似于台阶流生长模式。对不同石墨化阶段表面台阶高度演化的分析表明,随着初始(6√3×6√3)R30°表面转化为形成石墨烯,下面的三个 Si-C 双层坍塌以再生一个富 C 结构,该结构在石墨烯和 SiC 体之间的界面处也具有(6√3×6√3)R30°周期性。基于这些观察结果,提出了一种用于单层和多层石墨烯生长的结构机制。此外,我们还研究了初始(6√3×6√3)R30°表面向石墨烯转化的速率随时间和温度的变化。生长过程的动力学分析表明,该转变的激活能为 3.0±0.4 eV,接近 Si-C 键的断裂。

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