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Frictional lubricity enhanced by quantum mechanics

机译:量子力学增强了摩擦润滑性

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摘要

The quantum motion of nuclei, generally ignored in the physics of sliding friction, can affect in an important manner the frictional dissipation of a light particle forced to slide in an optical lattice. The density matrix-calculated evolution of the quantum version of the basic Prandtl–Tomlinson model, describing the dragging by an external force of a point particle in a periodic potential, shows that purely classical friction predictions can be very wrong. The strongest quantum effect occurs not for weak but for strong periodic potentials, where barriers are high but energy levels in each well are discrete, and resonant Rabi or Landau–Zener tunneling to states in the nearest well can preempt classical stick–slip with nonnegligible efficiency, depending on the forcing speed. The resulting permeation of otherwise unsurmountable barriers is predicted to cause quantum lubricity, a phenomenon which we expect should be observable in the recently implemented sliding cold ion experiments.
机译:原子核的量子运动在滑动摩擦物理学中通常被忽略,它可以以重要的方式影响被迫在光学晶格中滑动的光粒子的摩擦耗散。用密度矩阵计算的基本Prandtl–Tomlinson模型量子形式的演化描述了点粒子在周期性电势中的外力拖曳,表明纯经典的摩擦预测可能是非常错误的。最强的量子效应不是发生在弱势上,而是发生在强势势上,在势垒很高但每个阱中的能级是离散的情况下,共振Rabi或Landau-Zener隧穿到最近阱中的状态可以以不可忽略的效率抢占经典的粘滑现象。 ,具体取决于强制速度。预计由此产生的其他无法克服的势垒的渗透会导致量子润滑性,我们期望这种现象在最近实施的滑动冷离子实验中应能观察到。

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