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缺陷石墨烯片层断裂机制的数值研究

Numerical Investigation of the Fracture Mechanism of Defective Graphene Sheets.

作者信息

Fan Na, Ren Zhenzhou, Jing Guangyin, Guo Jian, Peng Bei, Jiang Hai

机构信息

School of Mechatronics Engineering, University of Electronic Science and Technology of China, Chengdu 611731, China.

National Key Laboratory and Incubation Base of Photoelectric Technology and Functional Materials, School of Physics, Northwest University, Xi'an 710069, China.

出版信息

Materials (Basel). 2017 Feb 11;10(2):164. doi: 10.3390/ma10020164.

Abstract

Despite the unique occurrences of structural defects in graphene synthesis, the fracture mechanism of a defective graphene sheet has not been fully understood due to the complexities of the defects. In this study, the fracture mechanism of the monolayer graphene with four common types of defects (single vacancy defect, divacancy defect, Stone-Wales defect and line vacancy defect) were investigated systematically for mechanical loading along armchair and zigzag directions, by using the finite element method. The results demonstrated that all four types of defects could cause significant fracture strength loss in graphene sheet compared with the pristine one. In addition, the results revealed that the stress concentration occurred at the carbon-carbon bonds along the same direction as the displacement loading due to the deficiency or twist of carbon-carbon bonds, resulting in the breaking of the initial crack point in the graphene sheet. The fracture of the graphene sheet was developed following the direction of the breaking of carbon-carbon bonds, which was opposite to that of the displacement loading.

摘要

尽管在石墨烯合成过程中会出现独特的结构缺陷,但由于缺陷的复杂性,有缺陷的石墨烯片的断裂机制尚未完全被理解。在本研究中,通过使用有限元方法,系统地研究了具有四种常见类型缺陷(单空位缺陷、双空位缺陷、斯通-威尔士缺陷和线空位缺陷)的单层石墨烯在沿扶手椅方向和锯齿方向进行机械加载时的断裂机制。结果表明,与原始石墨烯相比,所有四种类型的缺陷都会导致石墨烯片的断裂强度显著损失。此外,结果表明,由于碳-碳键的缺失或扭曲,应力集中出现在与位移加载方向相同的碳-碳键处,导致石墨烯片中初始裂纹点的断裂。石墨烯片的断裂沿着碳-碳键的断裂方向发展,这与位移加载方向相反。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8251/5459152/5736bc46381d/materials-10-00164-g001.jpg

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