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Large Scale Molecular Dynamics Simulations of Vapor Phase Lubrication for MEMS

机译:MEMS汽相润滑的大规模分子动力学模拟

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While alkylsilane monolayers reduce both adhesion and friction in MEMS, experiments and simulations have shown that they are easilyMamaged by momentary contact even at low loads. Vapor phase alcohols appear to provide a potential solution to this problem, reducing friction in MEMS with no noticeable wear, and allowing devices to run for billions of cycles without failure. The underlying mechanisms behind both the reduction in friction as well as the healing of damage are however unclear. We report on the results of large scale molecular dynamics simulations aimed at understanding the tribology of vapor phase alcohols in contact with amorphous sibxja substrates. The healing mechanism is investigated by simulating asperity contact with a model AFM tip in contact with a monolayer of propanol on an amorphous silica substrate. We find that because of the low vapor pressure, alcohol molecules removed by shear contact remain close to the substrate, moving around the contact region to replenish molecules removed from the damage site. For comparison, the tribology of propanol and water confined between two opposing fiat silica surfaces is also studied.
机译:尽管烷基硅烷单层降低了MEMS中的附着力和摩擦力,但实验和模拟表明,即使在低负载下,它们也容易因瞬间接触而损坏。气相醇似乎为解决该问题提供了一种可能的解决方案,它可以减少MEMS中的摩擦而不会引起明显的磨损,并且可以使设备连续运行数十亿次而不会出现故障。然而,减少摩擦以及修复损伤背后的潜在机制尚不清楚。我们报告大规模分子动力学模拟的结果,旨在了解与非晶态sibxja底物接触的气相醇的摩擦学。通过模拟与模型AFM尖端的粗糙接触与无定形二氧化硅基质上的丙醇单层接触来研究其愈合机理。我们发现,由于蒸汽压低,通过剪切接触去除的醇分子仍保持靠近基材,在接触区域周围移动,以补充从损伤部位去除的分子。为了进行比较,还研究了限制在两个相对的平板二氧化硅表面之间的丙醇和水的摩擦学。

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