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规则褶皱石墨烯片纳米压痕的原子模拟

Atomic Simulation of Nanoindentation on the Regular Wrinkled Graphene Sheet.

作者信息

Wang Ruonan, Pang Haosheng, Li Minglin, Lai Lianfeng

机构信息

School of Mechanical Engineering and Automation, Fuzhou University, Fuzhou, Fujian 350002, China.

Fujian Key Laboratory of Medical Instrumentation and Pharmaceutical Technology, Fuzhou University, Fuzhou, Fujian 350002, China.

出版信息

Materials (Basel). 2020 Mar 3;13(5):1127. doi: 10.3390/ma13051127.

Abstract

Surface landscapes have vague impact on the mechanical properties of graphene. In this paper, single-layered graphene sheets (SLGS) with regular wrinkles were first constructed by applying shear deformation using molecular dynamics (MD) simulations and then indented to extract their mechanical properties. The influence of the boundary condition of SLGS were considered. The wrinkle features and wrinkle formation processes of SLGS were found to be significantly related to the boundary conditions as well as the applied shear displacement and velocity. The wrinkling amplitude and degree of wrinkling increased with the increase in the applied shear displacements, and the trends of wrinkling wavelengths changed with the different boundary conditions. With the fixed boundary condition, the degree of graphene wrinkling was only affected when the velocity was greater than a certain value. The effect of wrinkles on the mechanical characterization of SLGS by atomic force microscopy (AFM) nanoindentation was finally investigated. The regular surface wrinkling of SLGS was found to weaken the Young's modulus of graphene. The Young's modulus of graphene deteriorates with the increase in the degree of regular wrinkling.

摘要

表面形貌对石墨烯的力学性能有模糊的影响。在本文中,首先通过分子动力学(MD)模拟施加剪切变形构建具有规则皱纹的单层石墨烯片(SLGS),然后进行压痕以提取其力学性能。考虑了SLGS边界条件的影响。发现SLGS的皱纹特征和皱纹形成过程与边界条件以及施加的剪切位移和速度密切相关。皱纹幅度和皱纹程度随着施加的剪切位移的增加而增加,并且皱纹波长的趋势随着不同的边界条件而变化。在固定边界条件下,仅当速度大于一定值时,石墨烯的皱纹程度才会受到影响。最后研究了皱纹对通过原子力显微镜(AFM)纳米压痕对SLGS力学表征的影响。发现SLGS的规则表面皱纹会削弱石墨烯的杨氏模量。石墨烯的杨氏模量随着规则皱纹程度的增加而降低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a3d2/7084966/42b66d6b2116/materials-13-01127-g001.jpg

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