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Dynamic superlubricity on insulating and conductive surfaces in ultra-high vacuum and ambient environment

机译:在超高真空和环境中的绝缘和导电表面上具有动态超润滑性

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Atomic-scale friction between a sharp tip at the end of a micro-fabricated silicon cantilever and atomically flat surfaces (NaCl, KBr, HOPG and mica) can be significantly reduced by piezo-induced perpendicular mechanical oscillations at specific resonance frequencies of the cantilever in gentle contact with the sample. The reported measurements confirm and extend the applicability of the effect recently demonstrated using electro-capacitive actuation on alkali halide surfaces in ultra-high vacuum (Socoliuc et al 2006 Science 313 208). A controlled reduction of friction is now observed even on a conductive surface and under ambient conditions, which is quite promising for applications to micro-electromechanical devices. The theory previously used to interpret 'dynamic superlubricity' is supported by new measurements showing that the contact can be maintained in that regime and that the initial reduction of friction is linear versus oscillation amplitude. The calibration of the oscillating component of the normal force is also discussed.
机译:在悬臂梁的特定共振频率下,压电诱导的垂直机械振动可以显着减小微细加工的硅悬臂梁末端的尖锐尖端与原子平面(NaCl,KBr,HOPG和云母)之间的原子尺度摩擦。与样品轻轻接触。所报道的测量结果证实并扩展了最近在超高真空下对碱金属卤化物表面进行电电容驱动所证明的效果的适用性(Socoliuc et al 2006 Science 313 208)。现在甚至在导电表面和环境条件下也观察到摩擦的受控减小,这对于微机电设备的应用是非常有希望的。新的测量结果支持先前用于解释“动态超润滑性”的理论,该测量结果表明可以在该状态下保持接触,并且摩擦的初始减小是线性的,相对于振幅。还讨论了法向力振荡分量的校准。

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