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Simulations on atomic-scale friction between self-assembled monolayers: Phononic energy dissipation

机译:自组装单分子层之间原子尺度摩擦的仿真:声子能量耗散

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Atomic-scale friction between self-assembled monolayers (SAMs) on Au (111) has been studied through molecular dynamics simulations, with emphasis on the mechanism of energy dissipation. Results show that the shear stress and chain angle on commensurate SAMs exhibit a clean periodic pattern and atomic stick-slip friction, which manifests a gradual storage and sudden release of energy. Using a simple model of two atoms, analysis shows that the atomic stick-slip originates from the dynamic instability of molecule motion. Energy has been built up during the stick, followed by a sudden separation as the equilibrium becomes unstable, and most energy dissipates at the time of slip. Moreover, the simulations reveal that more energy is stored and released in commensurate sliding, resulting in much higher friction than that in incommensurate cases. The contradictory frictional behavior can be traced to the difference in the number and strength of the Van der Waals bonds, formed in the two types of contacts.
机译:通过分子动力学模拟研究了Au(111)上自组装单分子膜(SAM)之间的原子尺度摩擦,重点是能量耗散机理。结果表明,相称的SAM上的剪切应力和链角表现出清晰的周期性模式和原子粘滑摩擦,这表明能量逐渐存储并突然释放。使用两个原子的简单模型,分析表明原子粘滑起源于分子运动的动态不稳定性。摇杆期间已经积聚了能量,随后由于平衡变得不稳定而突然分离,并且大多数能量在打滑时消散。此外,仿真显示,在相应的滑动中会存储和释放更多的能量,从而导致摩擦力远大于不相应的情况。矛盾的摩擦行为可以追溯到在两种类型的接触中形成的范德华键的数量和强度的差异。

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