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Improving Broadband Displacement Detection with Quantum Correlations

机译:利用量子相关性改善宽带位移检测

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Interferometers enable ultrasensitive measurement in a wide array of applications from gravitational wave searches to force microscopes. The role of quantum mechanics in the metrological limits of interferometers has a rich history, and a large number of techniques to surpass conventional limits have been proposed. In a typical measurement configuration, the trade-off between the probe’s shot noise (imprecision) and its quantum backaction results in what is known as the standard quantum limit (SQL). In this work, we investigate how quantum correlations accessed by modifying the readout of the interferometer can access physics beyond the SQL and improve displacement sensitivity. Specifically, we use an optical cavity to probe the motion of a silicon nitride membrane off mechanical resonance, as one would do in a broadband displacement or force measurement, and observe sensitivity better than the SQL dictates for our quantum efficiency. Our measurement illustrates the core idea behind a technique known as variational readout, in which the optical readout quadrature is changed as a function of frequency to improve broadband displacement detection. And, more generally, our result is a salient example of how correlations can aid sensing in the presence of backaction.
机译:干涉仪可实现从重力波搜索到力显微镜的广泛应用中的超灵敏测量。量子力学在干涉仪的计量极限中的作用已有很长的历史,并且已经提出了许多超越常规极限的技术。在典型的测量配置中,探针的散粒噪声(不精确度)与其量子反作用之间的权衡导致了所谓的标准量子极限(SQL)。在这项工作中,我们研究了如何通过修改干涉仪的读数访问量子相关性,从而可以访问SQL以外的物理学并提高位移敏感性。具体来说,我们使用光腔来探测氮化硅膜的机械共振运动,就像在宽带位移或力测量中所做的那样,并且观察到的灵敏度要比SQL规定的量子效率更好。我们的测量结果说明了一种称为变分读出技术的核心思想,在该技术中,光学读出正交度随频率变化,以改善宽带位移检测。而且,更广泛地说,我们的结果是一个显着的例子,说明存在反向作用时相关如何帮助感知。

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