论文标题
用挤压光在悬浮的光学机电中抑制后坐力加热
Suppressing Recoil Heating in Levitated Optomechanics using Squeezed Light
论文作者
论文摘要
从理论上讲,我们表明在自由空间悬浮的光学机械中加热激光后坐力加热可以通过将光挤压到光学捕获的纳米颗粒上来任意抑制。挤压的存在修饰了量子电动力学光 - 物质的相互作用,使我们能够控制散射光所带来的信息量。此外,我们分析了测量不精确和背部噪声之间的权衡,并表明可以实现超出标准量子极限的光学检测。我们预测,使用最新的挤压光源,通过挤压单个高斯模式,可以通过适当的发射率方向挤压激光后坐力加热至少60%,并且通过挤压正确模式匹配的模式来减少98%。我们的结果对于动作和图书馆的自由度都是有效的,将导致改进的反馈冷却方案,并增加量子状态下光学悬浮的纳米颗粒的相干时间。
We theoretically show that laser recoil heating in free-space levitated optomechanics can be arbitrarily suppressed by shining squeezed light onto an optically trapped nanoparticle. The presence of squeezing modifies the quantum electrodynamical light-matter interaction in a way that enables us to control the amount of information that the scattered light carries about a given mechanical degree of freedom. Moreover, we analyze the trade-off between measurement imprecision and back-action noise and show that optical detection beyond the standard quantum limit can be achieved. We predict that, with state-of-the-art squeezed light sources, laser recoil heating can be reduced by at least 60% by squeezing a single Gaussian mode with an appropriate incidence direction, and by 98% by squeezing a properly mode-matched mode. Our results, which are valid both for motional and librational degrees of freedom, will lead to improved feedback cooling schemes as well as boost the coherence time of optically levitated nanoparticles in the quantum regime.