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Atomic-scale design of friction and energy dissipation

机译:摩擦和能量耗散的原子尺度设计

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摘要

Study of friction and energy dissipation always relied on direct observations. Actual theories provide limited prediction on the frictional and dissipative properties if only the material chemistry and geometry are known. We here develop a framework to study intrinsic friction and energy dissipation based on the only knowledge of the normal modes of the system at equilibrium. We derive an approximated expression for the first anharmonic term in the potential energy expansion which does not require the computation of the third-order force constants. Moreover, we show how to characterize the frequency content of observed physical quantities and individuate the dissipative processes active during experimental measurements. As a case study, we consider the relative sliding motion of atomic layers in molybdenum disulfide dry lubricant, and we discuss how to extract information on the energetics of sliding from atomic force microscopy signals. The presented framework switches the investigation paradigm on friction and energy dissipation from dynamic to static studies, paving avenues to explore for the design of alternative anisotropic tribological and thermal materials.
机译:摩擦和能量耗散的研究始终依赖于直接观察。如果仅了解材料的化学性质和几何形状,则实际的理论只能提供有关摩擦和耗散特性的有限预测。我们在这里基于对平衡状态下系统正常模式的唯一了解,开发出一个框架来研究固有摩擦和能量耗散。我们推导了势能扩展中第一非谐项的近似表达式,该表达式不需要计算三阶力常数。此外,我们展示了如何表征观察到的物理量的频率含量,以及如何在实验测量过程中区分活跃的耗散过程。作为案例研究,我们考虑了二硫化钼干润滑剂中原子层的相对滑动,并讨论了如何从原子力显微镜信号中提取有关滑动能的信息。提出的框架将摩擦和能量耗散的研究范式从动态研究转换为静态研究,为探索各向异性的摩擦学和热学材料的替代铺平了道路。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2019年第9期|094309.1-094309.8|共8页
  • 作者单位

    Czech Tech Univ, Fac Elect Engn, Tech 2, Prague 16627 6, Czech Republic;

    Czech Tech Univ, Fac Elect Engn, Tech 2, Prague 16627 6, Czech Republic;

    Czech Tech Univ, Fac Elect Engn, Tech 2, Prague 16627 6, Czech Republic;

    Czech Tech Univ, Fac Elect Engn, Tech 2, Prague 16627 6, Czech Republic|Czech Acad Sci, Dept Thin Films & Nanostruct, Inst Phys, Cukrovarnicka 10, Prague 16200 6, Czech Republic;

    Czech Tech Univ, Fac Elect Engn, Tech 2, Prague 16627 6, Czech Republic;

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