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石墨烯中界面不稳定性导致的波纹形成。

Formation of ripples in graphene as a result of interfacial instabilities.

机构信息

Honda Research Institute USA Inc., 1381 Kinnear Road, Columbus, Ohio 43212, United States.

出版信息

ACS Nano. 2011 Dec 27;5(12):9619-27. doi: 10.1021/nn202972f. Epub 2011 Nov 21.

Abstract

Formation of ripples on a supported graphene sheet involves interfacial interaction with the substrate. In this work, graphene was grown on a copper foil by chemical vapor deposition from methane. On thermal quenching from elevated temperatures, we observed the formation of ripples in grown graphene, developing a peculiar topographic pattern in the form of wavy grooves and single/double rolls, roughly honeycomb cells, or their combinations. Studies on pure copper foil under corresponding conditions but without the presence of hydrocarbon revealed the appearance of peculiar patterns on the foil surface, such as dendritic structures that are distinctive not of equilibrium solidified phases but arise from planar and/or convective instabilities driven by solutal and thermal capillary forces. We propose a new origin for the formation of ripples in the course of graphene growth at elevated temperatures, where the topographic pattern formation is governed by dynamic instabilities on the interface of a carbon-catalyst binary system. These non-equilibrium processes can be described based on Mullins-Sekerka and Benard-Marangoni instabilities in diluted binary alloys, which offer control over the ripple texturing through synthesis parameters such as temperature, imposed temperature gradient, quenching rate, diffusion coefficients of carbon in the metal catalyst, and the miscibility gap of the metal catalyst-carbon system.

摘要

在支撑的石墨烯片上形成波纹涉及与基底的界面相互作用。在这项工作中,通过甲烷的化学气相沉积在铜箔上生长石墨烯。在从高温淬火时,我们观察到生长的石墨烯中形成了波纹,形成了波纹状凹槽和单/双辊的奇特形貌图案,大致呈蜂窝状细胞或它们的组合。在相应条件下但没有碳氢化合物存在的纯铜箔上的研究揭示了箔表面上出现了奇特的图案,例如枝晶结构,这些结构不是平衡凝固相的特征,而是由溶质和热毛细力驱动的平面和/或对流不稳定性引起的。我们提出了在高温下生长石墨烯过程中形成波纹的新起源,其中地形图案形成由碳-催化剂双元系统界面上的动态不稳定性控制。这些非平衡过程可以基于稀释二元合金中的 Mullins-Sekerka 和 Benard-Marangoni 不稳定性来描述,通过温度、施加的温度梯度、淬火速率、金属催化剂中碳的扩散系数以及金属催化剂-碳系统的混溶性间隙等合成参数来控制波纹纹理。

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