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用于量子位移传感的外差光谱中的成像相关性

Imaging Correlations in Heterodyne Spectra for Quantum Displacement Sensing.

作者信息

Pontin A, Lang J E, Chowdhury A, Vezio P, Marino F, Morana B, Serra E, Marin F, Monteiro T S

机构信息

Department of Physics and Astronomy, University College London, Gower Street, London WC1E 6BT, United Kingdom.

Istituto Nazionale di Fisica Nucleare (INFN), Sezione di Firenze, Via Sansone 1, I-50019 Sesto Fiorentino (FI), Italy and CNR-INO, L.go Enrico Fermi 6, I-50125 Firenze, Italy.

出版信息

Phys Rev Lett. 2018 Jan 12;120(2):020503. doi: 10.1103/PhysRevLett.120.020503.

Abstract

The extraordinary sensitivity of the output field of an optical cavity to small quantum-scale displacements has led to breakthroughs such as the first detection of gravitational waves and of the motions of quantum ground-state cooled mechanical oscillators. While heterodyne detection of the output optical field of an optomechanical system exhibits asymmetries which provide a key signature that the mechanical oscillator has attained the quantum regime, important quantum correlations are lost. In turn, homodyning can detect quantum squeezing in an optical quadrature but loses the important sideband asymmetries. Here we introduce and experimentally demonstrate a new technique, subjecting the autocorrelators of the output current to filter functions, which restores the lost heterodyne correlations (whether classical or quantum), drastically augmenting the useful information accessible. The filtering even adjusts for moderate errors in the locking phase of the local oscillator. Hence we demonstrate the single-shot measurement of hundreds of different field quadratures allowing the rapid imaging of detailed features from a simple heterodyne trace. We also obtain a spectrum of hybrid homodyne-heterodyne character, with motional sidebands of combined amplitudes comparable to homodyne. Although investigated here in a thermal regime, the method's robustness and generality represents a promising new approach to sensing of quantum-scale displacements.

摘要

光学腔输出场对微小量子尺度位移的极高灵敏度带来了诸多突破,例如首次探测到引力波以及量子基态冷却机械振荡器的运动。虽然光机械系统输出光场的外差检测呈现出不对称性,这是机械振荡器进入量子态的关键特征,但重要的量子关联却会丢失。反过来,零差检测能够检测光正交分量中的量子压缩,但会丢失重要的边带不对称性。在此,我们介绍并通过实验演示一种新技术,即让输出电流的自相关器作用于滤波函数,该技术可恢复丢失的外差关联(无论是经典关联还是量子关联),极大地增加了可获取的有用信息。这种滤波甚至能校正本地振荡器锁定相位中的适度误差。因此,我们展示了对数百个不同场正交分量的单次测量,从而能够从简单的外差迹线快速成像详细特征。我们还获得了一种混合零差 - 外差特性的频谱,其运动边带的组合幅度与零差相当。尽管本文是在热学 regime 下进行研究的,但该方法的稳健性和通用性代表了一种用于探测量子尺度位移的有前景的新方法。

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