论文标题

量子储层工程的机械谐振器的地面冷却

Ground-state cooling of mechanical resonators by quantum reservoir engineering

论文作者

Naseem, M. Tahir, Müstecaplıoğlu, Özgür E.

论文摘要

我们提出了一种方案,将机械谐振器冷却到其量子地面,该量子是通过光机电样耦合与工作流体相互作用的。与标准激光冷却方案相比,相干使谐振器向其地面运动的运动,我们考虑了一个不连贯的热源来实现相同的目标。我们表明,可以同时冷却两个退化或接近分级的机械谐振器,这是实现的挑战性目标。该方法对多个谐振器同时冷却的概括很简单。冷却剂和浴缸之间耦合的光谱过滤是实现我们方案冷却的关键。冷却的基本物理机制可以通过在标准的光力学环境中调查激光边带冷却和冷却之间的直接连接来解释。我们通过量子储层工程启用了我们有利的冷却方案,可以在各种设置中实现,并使用目标系统使用冷却剂的参数耦合。我们还讨论使用非热浴模拟超高温度热浴进行冷却。

We propose a scheme to cool down a mechanical resonator to its quantum ground-state, which is interacting with a working fluid via an optomechanical-like coupling. As opposed to standard laser cooling schemes where coherence renders the motion of a resonator to its ground-state, we consider an incoherent thermal source to achieve the same aim. We show that simultaneous cooling of two degenerate or near-degenerate mechanical resonators is possible, which is otherwise a challenging goal to achieve. The generalization of this method to the simultaneous cooling of multiple resonators is straightforward. Spectral filtering of the coupling between the cooling agent and the baths is a key to realize cooling in our scheme. The underlying physical mechanism of cooling is explained by investigating a direct connection between the laser sideband cooling and cooling by heating in a standard optomechanical setting. Our advantageous scheme of cooling enabled by quantum reservoir engineering can be realized in various setups, employing parametric coupling of a cooling agent with the target systems. We also discuss using non-thermal baths to simulate ultra-high temperature thermal baths for cooling.

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