Xu Xunnong, Purdy Thomas, Taylor Jacob M
Joint Quantum Institute, University of Maryland/National Institute of Standards and Technology, College Park, Maryland 20742, USA.
Joint Center for Quantum Information and Computer Science, University of Maryland, College Park, Maryland 20742, USA.
Phys Rev Lett. 2017 Jun 2;118(22):223602. doi: 10.1103/PhysRevLett.118.223602. Epub 2017 May 31.
Optomechanical systems show tremendous promise for the high-sensitivity sensing of forces and modification of mechanical properties via light. For example, similar to neutral atoms and trapped ions, laser cooling of mechanical motion by radiation pressure can take single mechanical modes to their ground state. Conventional optomechanical cooling is able to introduce an additional damping channel to mechanical motion while keeping its thermal noise at the same level, and, as a consequence, the effective temperature of the mechanical mode is lowered. However, the ratio of the temperature to the quality factor remains roughly constant, preventing dramatic advances in quantum sensing using this approach. Here we propose an approach for simultaneously reducing the thermal load on a mechanical resonator while improving its quality factor. In essence, we use the optical interaction to dynamically modify the dominant damping mechanism, providing an optomechanically induced effect analogous to a phononic band gap. The mechanical mode of interest is assumed to be weakly coupled to its heat bath but strongly coupled to a second mechanical mode, which is cooled by radiation pressure coupling to a red-detuned cavity field. We also identify a realistic optomechanical design that has the potential to realize this novel cooling scheme.
光机械系统在通过光实现力的高灵敏度传感和机械性能改变方面展现出巨大潜力。例如,类似于中性原子和捕获离子,通过辐射压力对机械运动进行激光冷却可使单个机械模式达到其基态。传统的光机械冷却能够在保持机械运动热噪声水平不变的同时,为其引入额外的阻尼通道,结果是机械模式的有效温度降低。然而,温度与品质因数的比值大致保持恒定,这阻碍了使用这种方法在量子传感方面取得重大进展。在此,我们提出一种方法,可在提高机械谐振器品质因数的同时,降低其热负载。本质上,我们利用光学相互作用动态改变主导阻尼机制,提供一种类似于声子带隙的光机械诱导效应。假设感兴趣的机械模式与热库弱耦合,但与第二个机械模式强耦合,第二个机械模式通过与失谐到红色的腔场的辐射压力耦合而被冷却。我们还确定了一种切实可行的光机械设计,它有潜力实现这种新颖的冷却方案。