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Grain size and hydroxyl-coverage dependent tribology of polycrystalline graphene

机译:多晶石墨烯的晶粒尺寸和羟基覆盖物依赖性摩擦学

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摘要

Functional groups and grain boundaries of polycrystalline graphenes play important roles in their tribological behaviors but the mechanism is still elusive. Here, we have investigated the influences of hydroxyl groups, coverage, and grain size on the surface corrugation, friction, and motion behavior of polycrystalline graphene using molecular dynamics simulations. The results show that the corrugation of polycrystalline graphene increases with respect to an increase in grain size. The introduction of hydroxyl groups suppresses the corrugation. The friction between carbon nanotube (CNT) and polycrystalline graphene increases the formation of hydrogen bonds when the interfaces are grafted with hydroxyl groups. The highest amount of friction appears when the ratio of hydroxyl groups on CNT, and polycrystalline graphene, is about 15%-5%. This is due to the balance between the interface space and the formed hydrogen bonds. Furthermore, polycrystalline slides following the movement of CNT owing to high friction. In addition, the energy dissipation as a result of the vibration of the hydroxyl groups plays a more important role as the ratio of hydroxyl groups increases.
机译:多晶石墨烯的功能群和晶界在其摩擦学行为中起重要作用,但机制仍然难以捉摸。在这里,我们研究了使用分子动力学模拟的多晶石墨烯的表面波纹,摩擦和运动行为对多晶石墨烯的影响。结果表明,多晶石墨烯的波纹相对于晶粒尺寸的增加增加。羟基的引入抑制了波纹。当界面接枝羟基时,碳纳米管(CNT)和多晶石墨烯之间的摩擦增加了氢键的形成。当CNT上的羟基和多晶石墨烯的比例约为15%-5%时,出现最高摩擦量。这是由于界面空间和形成的氢键之间的平衡。此外,由于高摩擦,CNT运动之后的多晶载玻片。另外,随着羟基的振动而产生的能量耗散在羟基的比例增加时起着更重要的作用。

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