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Ground-state cooling of a micromechanical oscillator: Comparing cold damping and cavity-assisted cooling schemes

机译:微机械振荡器的地线冷却:冷阻和腔辅助冷却方案比较

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摘要

We provide a general framework to describe cooling of a micromechanical oscillator to its quantum ground state by means of radiation-pressure coupling with a driven optical cavity. We apply it to two experimentally realized schemes, back-action cooling via a detuned cavity and cold-damping quantum-feedback cooling, and we determine the ultimate quantum limits of both schemes for the full parameter range of a stable cavity. While both allow one to reach the oscillator's quantum ground state, we find that back-action cooling is more efficient in the good cavity limit, i.e., when the cavity bandwidth is smaller than the mechanical frequency, while cold damping is more suitable for the bad cavity limit. The results of previous treatments are recovered as limiting cases of specific parameter regimes.
机译:我们提供了一种通过具有从动光学腔的辐射压力耦合来描述微机械振荡器到其量子接地状态的一般框架。 我们将其应用于两种实验实现的方案,通过旋转腔和冷阻量子反馈冷却的反向动作冷却,并确定两个方案的稳定参数范围的终极量子限制。 虽然两者都允许一个达到振荡器的量子地位,但我们发现后动散冷却在良好的腔间隔内更有效,即,当腔带宽小于机械频率时,虽然冷阻尼更适合于坏 腔极限。 先前治疗的结果被恢复为特定参数制度的限制性病例。

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