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拉伸状态下铜上多晶石墨烯的开裂

Cracking of Polycrystalline Graphene on Copper under Tension.

作者信息

Na Seung Ryul, Wang Xiaohan, Piner Richard D, Huang Rui, Willson C Grant, Liechti Kenneth M

机构信息

Department of Aerospace Engineering and Engineering Mechanics, Research Center for the Mechanics of Solids, Structures and Materials, and ‡The Materials Science and Engineering Program, The University of Texas at Austin , Austin, Texas 78712, United States.

出版信息

ACS Nano. 2016 Oct 25;10(10):9616-9625. doi: 10.1021/acsnano.6b05101. Epub 2016 Sep 27.

Abstract

Roll-to-roll manufacturing of graphene is attractive because of its compatibility with flexible substrates and its promise of high-speed production. Several prototype roll-to-roll systems have been demonstrated, which produce large-scale graphene on polymer films for transparent conducting film applications.1-4 In spite of such progress, the quality of graphene may be influenced by the tensile forces that are applied during roll-to-roll transfer. To address this issue, we conducted in situ tensile experiments on copper foil coated with graphene grown by chemical vapor deposition, which were carried out in a scanning electron microscope. Channel cracks, which were perpendicular to the loading direction, initiated over the entire graphene monolayer at applied tensile strain levels that were about twice the yield strain of the (annealed) copper. The spacing between the channel cracks decreased with increasing applied strain, and new graphene wrinkles that were parallel to the loading direction appeared. These morphological features were confirmed in more detail by atomic force microscopy. Raman spectroscopy was used to determine the strain in the graphene, which was related to the degradation of the graphene/copper interface. The experimental data allowed the fracture toughness of graphene and interfacial properties of the graphene/copper interface to be extracted based on classical channel crack and shear-lag models. This study not only deepens our understanding of the mechanical and interfacial behavior of graphene on copper but also provides guidelines for the design of roll-to-roll processes for the dry transfer of graphene.

摘要

卷对卷制造石墨烯具有吸引力,因为它与柔性基板兼容,并有望实现高速生产。已经展示了几种卷对卷系统原型,它们在聚合物薄膜上大规模生产石墨烯,用于透明导电薄膜应用。1-4尽管取得了这样的进展,但石墨烯的质量可能会受到卷对卷转移过程中施加的拉力影响。为了解决这个问题,我们对涂覆有通过化学气相沉积生长的石墨烯的铜箔进行了原位拉伸实验,实验在扫描电子显微镜中进行。垂直于加载方向的通道裂纹在整个石墨烯单分子层上产生,此时施加的拉伸应变水平约为(退火)铜屈服应变的两倍。通道裂纹之间的间距随着施加应变的增加而减小,并且出现了与加载方向平行的新的石墨烯褶皱。这些形态特征通过原子力显微镜得到了更详细的证实。拉曼光谱用于确定石墨烯中的应变,该应变与石墨烯/铜界面的降解有关。实验数据使得能够基于经典的通道裂纹和剪切滞后模型提取石墨烯的断裂韧性以及石墨烯/铜界面的界面特性。这项研究不仅加深了我们对石墨烯在铜上的力学和界面行为的理解,还为石墨烯干式转移的卷对卷工艺设计提供了指导。

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