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由辐射压力驱动的微机械谐振器。

Micromechanical Resonator Driven by Radiation Pressure Force.

作者信息

Boales Joseph A, Mateen Farrukh, Mohanty Pritiraj

机构信息

Department of Physics, Boston University, 590 Commonwealth Avenue, Boston, MA, 02215, USA.

Department of Mechanical and Aerospace Engineering, Boston University, 110 Cummington Street, Boston, MA, 02215, USA.

出版信息

Sci Rep. 2017 Nov 22;7(1):16056. doi: 10.1038/s41598-017-16063-4.

Abstract

Radiation pressure exerted by light on any surface is the pressure generated by the momentum of impinging photons. The associated force - fundamentally, a quantum mechanical aspect of light - is usually too small to be useful, except in large-scale problems in astronomy and astrodynamics. In atomic and molecular optics, radiation pressure can be used to trap or cool atoms and ions. Use of radiation pressure on larger objects such as micromechanical resonators has been so far limited to its coupling to an acoustic mode, sideband cooling, or levitation of microscopic objects. In this Letter, we demonstrate direct actuation of a radio-frequency micromechanical plate-type resonator by the radiation pressure force generated by a standard laser diode at room temperature. Using two independent methods, the magnitude of the resonator's response to forcing by radiation pressure is found to be proportional to the intensity of the incident light.

摘要

光作用于任何表面时产生的辐射压力是由入射光子的动量所产生的压力。相关的力——从根本上来说,是光的量子力学特性——通常太小而无实际用途,不过在天文学和天体动力学的大规模问题中除外。在原子与分子光学领域,辐射压力可用于捕获或冷却原子和离子。到目前为止,在诸如微机械谐振器等较大物体上利用辐射压力还仅限于其与声学模式的耦合、边带冷却或微观物体的悬浮。在本信函中,我们展示了在室温下由标准激光二极管产生的辐射压力直接驱动射频微机械平板型谐振器。通过两种独立方法发现,谐振器对辐射压力驱动的响应幅度与入射光强度成正比。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2b6e/5700072/bc8e528c37fd/41598_2017_16063_Fig1_HTML.jpg

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