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Friction Force Microscopy Analysis of Self-Adaptive W-S-C Coatings: Nanoscale Friction and Wear

机译:自适应W-S-C涂层的摩擦力显微镜分析:纳米级摩擦磨损

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摘要

Transition metal dichalcogenides (TMD) are increasingly popular due to unique structural and mechanical properties. They belong, together with graphene and similar 2D materials, to a small family of solid lubricants with potential to produce ultralow friction state. At the macroscale, low friction stems from the ability to form well-oriented films on the sliding surface (typically up to 10 nm thick), with the TMD basal planes aligned parallel to the surface. In this study, we quantitatively evaluate tribological properties of three sputtered tungsten-sulfur-carbon (W-S-C) coatings at a nanoscale using friction force microscopy. In particular, we investigate possible formation of well-ordered tungsten disulfide (WS2) layers on the coating surface. The coefficient of friction decreased with increasing load independently of coating composition or mechanical properties. In contrast, hard coatings with high tungsten carbide content were more resistant to wear. We successfully identified a WS2 tribolayer at the sliding interface, which peeled off as ultrathin flakes and attached to AFM tip. Nanoscale tribological behavior of WSC coatings replicates deviation of Amonton's law observed in macroscale testing and strongly suggests that the tribolayer is formed almost immediately after the start of sliding.
机译:由于独特的结构和机械性能,过渡金属二硫化碳(TMD)越来越受欢迎。它们与石墨烯和类似的2D材料一起属于一小类可能产生超低摩擦态的固体润滑剂。在宏观上,低摩擦源自在滑动表面上形成取向良好的膜的能力(通常最厚10 nm),而TMD基面平行于表面对齐。在这项研究中,我们使用摩擦力显微镜在纳米尺度上定量评估了三种溅射钨-硫-碳(W-S-C)涂层的摩擦学性能。特别是,我们研究了在涂层表面上形成有序的二硫化钨(WS2)层的可能性。摩擦系数随载荷的增加而降低,而与涂层组成或机械性能无关。相反,具有高碳化钨含量的硬质涂层更耐磨损。我们成功地在滑动界面上确定了WS2摩擦层,该WS2摩擦层剥落成超薄薄片,并附着在AFM尖端上。 WSC涂层的纳米级摩擦学行为复制了宏观测试中观察到的阿蒙顿定律的偏差,并强烈表明,摩擦层几乎在滑动开始后立即形成。

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