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Radiation-pressure effects upon a micromirror in a high-finesse optical cavity

机译:在高精度光学腔中对微镜的辐射压力效应

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Recent progress in high-finesse optical cavities and micro-mechanical resonators allows one to reach a new regime in which both mechanical and optical dynamics are governed by the radiation pressure exerted by light on mirrors. This optomechanical coupling leads to the existence of fundamental quantum limits in ultrasensitive interferometric measurements, and also to very efficient cooling mechanisms of micromirrors. We experimentally study these effects by monitoring in a very high-finesse cavity the displacements of a mirror coated on a micro-resonator. Directs effects of intracavity radiation pressure are experimentally demonstrated: we have observed a self-cooling of the resonator induced by the intracavity radiation pressure, to effective temperature in the 10 K range. Further experimental progress and cryogenic operation may allow for quantum optics experiments and lead to the experimental observation of the quantum ground state of a mechanical resonator.
机译:最近在高智光学空腔和微机械谐振器中的进展允许人们达到新的制度,其中机械和光学动力学都受到镜子上施加的辐射压力的控制。该光学机械耦合导致超敏感干涉测量中的基本量子限制,以及微镜的非常有效的冷却机制。我们通过在非常高智的腔中监测涂覆在微谐振器上的镜子的位移中来实验研究这些效果。直接对腔内辐射压力的效果进行实验证明:我们已经观察到由腔内辐射压力引起的谐振器的自冷却,以10k范围内的有效温度。进一步的实验进展和低温操作可以允许量子光学实验,并导致机械谐振器的量子接地状态的实验观察。

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