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首页> 外文期刊>Nanotechnology >Stochastic stick-slip nanoscale friction on oxide surfaces
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Stochastic stick-slip nanoscale friction on oxide surfaces

机译:氧化物表面上的随机粘滑纳米尺度摩擦

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摘要

The force needed to move a nanometer-scale contact on various oxide surfaces has been studied using an atomic force microscope and theoretical modeling. Force-distance traces unveil a stick-slip movement with erratic slip events separated by several nanometers. A linear scaling of friction force with normal load along with low pull-off forces reveals dispersive adhesive interactions at the interface. We model our findings by considering a variable Lennard-Jones-like interaction potential, which accounts for slip-induced variation of the effective contact area. The model explains the formation and fluctuation of stick-slip phases and provides guidelines for predicting transitions from stick-slip to continuous sliding on oxide surfaces.
机译:使用原子力显微镜和理论模型研究了在各种氧化物表面上移动纳米级接触所需的力。力距迹线揭示了粘滑运动,滑移事件不稳定,相隔数纳米。具有正常负载的摩擦力与低拉力的线性比例揭示了界面处的分散性胶粘剂相互作用。我们通过考虑可变的Lennard-Jones样的相互作用势来对我们的发现进行建模,该相互作用势解释了滑动引起的有效接触面积的变化。该模型解释了粘滑相的形成和波动,并提供了预测在氧化物表面上从粘滑过渡到连续滑动的过渡准则。

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