石墨烯
材料科学
分子动力学
基质(水族馆)
变形(气象学)
二面角
应变能
纳米技术
表面粗糙度
粘附
表面光洁度
复合材料
凝聚态物理
化学物理
计算化学
化学
结构工程
物理
有限元法
工程类
地质学
有机化学
分子
氢键
海洋学
作者
Xin He,Qingshun Bai,Rongqi Shen,Feihu Zhang,Yongbo Guo
标识
DOI:10.1016/j.apsusc.2020.147084
摘要
Molecular dynamics simulations are performed to investigate the evolution of configuration and morphology defects, the final strain and strain induced energy state of graphene on rough iron substrate. A series of randomly rough surfaces are modeled to simulate the real iron surface for the first time. The results show that the formation of morphology defects in graphene are mainly caused by the rapid normal displacement and the following shrinking along lateral directions that are both induced by the strong adhesion between graphene and iron. Fortunately, this strong adhesion cannot lead to global strain in whole graphene layers, i.e., the C–C strain are almost localized around the peaks of the asperities. Thus, the deformation energy (~20 meV/C atom) is mainly induced by bond angle bends and dihedral rotations rather than the expansion or compression of bond length. Through statistical analysis, we further find that the strain and deformation energy are linearly dependent on the substrate roughness. Our findings provide insight into tuning the morphology of graphene and the substrate designing of graphene-based devices. As the photoelectric performance of graphene is largely influenced by strain, our study also provides a guiding direction for evaluating the performance of graphene devices.
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