论文标题
在室温下从悬浮的纳米颗粒中挤出光线
Squeezed light from a levitated nanoparticle at room temperature
论文作者
论文摘要
机械系统的量子测量可以通过蓬源力产生光学挤压。它的观察结果需要高环境隔离和有效的检测,通常通过使用光腔和低温冷却来实现。在这里,我们通过测量室温下的光学悬浮纳米颗粒的位置,而没有光腔的开销来意识到这些条件。我们使用快速的杂作检测来同时重建正交光学四倍,并观察到降低$ 9 \%\ pm0.5 \%$以下噪声下方的噪声。我们的实验提供了一个新颖的,无腔的平台,用于挤压光线增强感测。同时,它描绘了一个明确而简单的策略,以观察固定的光力纠缠。
Quantum measurements of mechanical systems can produce optical squeezing via ponderomotive forces. Its observation requires high environmental isolation and efficient detection, typically achieved by using optical cavities and cryogenic cooling. Here we realize these conditions by measuring the position of an optically levitated nanoparticle at room temperature and without the overhead of an optical cavity. We use a fast heterodyne detection to reconstruct simultaneously orthogonal optical quadratures, and observe a noise reduction of $9\%\pm0.5\%$ below shot noise. Our experiment offers a novel, cavity-less platform for squeezed-light enhanced sensing. At the same time it delineates a clear and simple strategy towards observation of stationary optomechanical entanglement.