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Auxiliary-cavity-assisted ground-state cooling of an optically levitated nanosphere in the unresolved-sideband regime

机译:在未解决的边带方案中辅助腔辅助地面冷却光悬浮的纳米圈

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摘要

We theoretically analyze the ground-state cooling of an optically levitated nanosphere in the unresolvedsideband regime by introducing a coupled high-quality-factor cavity. On account of the quantum interference stemming from the presence of the coupled cavity, the spectral density of the optical force exerting on the nanosphere gets changed and then the symmetry between the heating and the cooling processes is broken. Through adjusting the detuning of a strong-dissipative cavity mode, one obtains an enhanced net cooling rate for the nanosphere. It is illustrated that the ground-state cooling can be realized in the unresolved sideband regime even if the effective optomechanical coupling is weaker than the frequency of the nanosphere, which can be understood by the picture that the effective interplay of the nanosphere and the auxiliary cavity mode brings the system back to an effective resolved regime. Besides, the coupled cavity refines the dynamical stability of the system.
机译:理论上,通过引入耦合的高质量因子腔理论分析了unsolvedsideBand制度中的光悬浮纳米球的地线冷却。 由于从耦合腔的存在下终止的量子干涉,施加在纳米之间的光力的光谱密度变化,然后将加热和冷却过程之间的对称性破裂。 通过调节强耗散腔模式的静脉,获得纳米圈的增强的净冷却速率。 示出了即使有效的光学机械耦合比纳米球的频率较弱,可以在未解决的边带状态下实现地面冷却,这可以通过纳米圈和辅助腔的有效相互作用来理解这可以理解的 模式将系统带回有效的解决方案。 此外,耦合腔改善了系统的动力稳定性。

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