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介观电反馈驱动的宏观机械谐振器。

A macroscopic mechanical resonator driven by mesoscopic electrical back-action.

机构信息

Department of Physics and Astronomy, Dartmouth College, Hanover, New Hampshire 03755, USA.

出版信息

Nature. 2010 Jul 1;466(7302):86-90. doi: 10.1038/nature09123.

Abstract

Systems with coupled mechanical and optical or electrical degrees of freedom have fascinating dynamics that, through macroscopic manifestations of quantum behaviour, provide new insights into the transition between the classical and quantum worlds. Of particular interest is the back-action of electrons and photons on mechanical oscillators, which can lead to cooling and amplification of mechanical motion. Furthermore, feedback, which is naturally associated with back-action, has been predicted to have significant consequences for the noise of a detector coupled to a mechanical oscillator. Recently it has also been demonstrated that such feedback effects lead to strong coupling between single-electron transport and mechanical motion in carbon nanotube nanomechanical resonators. Here we present noise measurements which show that the mesoscopic back-action of electrons tunnelling through a radio-frequency quantum point contact causes driven vibrations of the host crystal. This effect is a remarkable macroscopic manifestation of microscopic quantum behaviour, where the motion of a mechanical oscillator-the host crystal, which consists of on the order of 10(20) atoms-is determined by statistical fluctuations of tunnelling electrons.

摘要

具有机械和光学或电学自由度耦合的系统具有迷人的动力学特性,通过量子行为的宏观表现,为经典世界和量子世界之间的转变提供了新的见解。特别有趣的是电子和光子对机械振荡器的反作用,这可能导致机械运动的冷却和放大。此外,反馈与反作用自然相关,据预测,它将对与机械振荡器耦合的探测器的噪声产生重大影响。最近还表明,这种反馈效应导致了碳纳米管纳米机械谐振器中单电子输运和机械运动之间的强耦合。在这里,我们提出了噪声测量结果,表明通过射频量子点接触隧穿的电子的介观反作用导致了宿主晶体的驱动振动。这种效应是微观量子行为的显著宏观表现,其中机械振荡器——由大约 10^20 个原子组成的宿主晶体——的运动是由隧穿电子的统计波动决定的。

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