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The Role of Contact Adhesion in Friction and Wear of Graphene under Sliding Conditions

机译:接触粘附在滑动条件下石墨烯摩擦和磨损中的作用

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In this study, the failure mechanisms of graphene under sliding are examined using atomistic simulations. A 6nm diameter diamond tip is slid (at a controlled normal load) over a graphene monolayer that is adhered to a semi-infinite silicon substrate. The impact of tip adhesion on the wear and frictional behavior of graphene is studied by comparing two diamond tips, one of which has been hydrogen-passivated and the other which is bare carbon. By contrasting the passivated and unpassivated tips, the interplay of adhesive and abrasive wear on the graphene membrane can also be compared. The results of this work indicate that chemical bonding between the tip and the graphene greatly exacerbates tearing in the graphene monolayer by plowing ahead of the indenter, causing material build-up and increasing effective contact area.
机译:在该研究中,使用原子模拟检查滑动下石墨烯的失效机制。直径6nm直径的金刚石尖端(在受控的正常负载下)通过粘附到半无限硅衬底的石墨烯单层上。通过比较两个金刚石尖端,研究了尖端粘附对石墨烯的磨损和摩擦行为的影响,其中一个是氢钝化的,另一个是裸碳。通过对比钝化和未顺透的尖端,也可以比较石墨烯膜上的粘合剂和磨料的相互作用。这项工作的结果表明,通过在压头前犁,引起材料积聚和增加有效接触面积,表明尖端和石墨烯之间的化学键合极大地加剧了石墨烯单层中的撕裂。

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