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Self-cooling of a micromirror by radiation pressure

机译:辐射压力使微镜自冷

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Cooling of mechanical resonators is currently a popular topic in many fields of physics including ultra-high precision measurements(1), detection of gravitational waves(2,3) and the study of the transition between classical and quantum behaviour of a mechanical system(4-6). Here we report the observation of self-cooling of a micromirror by radiation pressure inside a high-finesse optical cavity. In essence, changes in intensity in a detuned cavity, as caused by the thermal vibration of the mirror, provide the mechanism for entropy flow from the mirror's oscillatory motion to the low-entropy cavity field(2). The crucial coupling between radiation and mechanical motion was made possible by producing freestanding micromirrors of low mass (m approximate to 400 ng), high reflectance ( more than 99.6%) and high mechanical quality (Q approximate to 10,000). We observe cooling of the mechanical oscillator by a factor of more than 30; that is, from room temperature to below 10 K. In addition to purely photothermal effects(7) we identify radiation pressure as a relevant mechanism responsible for the cooling. In contrast with earlier experiments, our technique does not need any active feedback(8-10). We expect that improvements of our method will permit cooling ratios beyond 1,000 and will thus possibly enable cooling all the way down to the quantum mechanical ground state of the micromirror.
机译:机械谐振器的冷却目前是许多物理领域的热门话题,包括超高精度测量(1),引力波检测(2,3)以及机械系统经典行为和量子行为之间的跃迁研究(4)。 -6)。在这里,我们报告通过高精细光学腔内部的辐射压力观察微镜自冷的现象。从本质上讲,由反射镜的热振动引起的失谐腔中强度的变化为从反射镜的振荡运动到低熵腔场的熵流提供了机制(2)。通过生产低质量(m约400 ng),高反射率(大于99.6%)和高机械质量(Q约10,000)的独立式微镜,可以实现辐射与机械运动之间的关键耦合。我们观察到机械振荡器的冷却超过30倍;也就是说,从室温到10 K以下。除了纯粹的光热效应(7),我们还将辐射压力确定为引起冷却的相关机制。与早期的实验相反,我们的技术不需要任何主动反馈(8-10)。我们期望我们方法的改进将允许冷却比超过1,000,因此将有可能一直冷却到微镜的量子机械基态。

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