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首页> 外文期刊>Physical review letters >Beating the Standard Sensitivity-Bandwidth Limit of Cavity-Enhanced Interferometers with Internal Squeezed-Light Generation
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Beating the Standard Sensitivity-Bandwidth Limit of Cavity-Enhanced Interferometers with Internal Squeezed-Light Generation

机译:具有内部压缩光产生的腔增强干涉仪的标准灵敏度-带宽极限

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摘要

The shot-noise limited peak sensitivity of cavity-enhanced interferometric measurement devices, such as gravitational-wave detectors, can be improved by increasing the cavity finesse, even when comparing fixed intracavity light powers. For a fixed light power inside the detector, this comes at the price of a proportional reduction in the detection bandwidth. High sensitivity over a large span of signal frequencies, however, is essential for astronomical observations. It is possible to overcome this standard sensitivity-bandwidth limit using nonclassical correlations in the light field. Here, we investigate the internal squeezing approach, where the parametric amplification process creates a nonclassical correlation directly inside the interferometer cavity. We theoretically analyze the limits of the approach and measure 36% increase in the sensitivity-bandwidth product compared to the classical case. To our knowledge, this is the first experimental demonstration of an improvement in the sensitivity-bandwidth product using internal squeezing, opening the way for a new class of optomechanical force sensing devices.
机译:即使比较固定的腔内光功率,也可以通过增加腔的精细度来改善腔增强干涉测量设备(如重力波检测器)的散粒噪声峰值灵敏度。对于检测器内部固定的光功率,这是以检测带宽成比例减小的代价。但是,对于大范围的信号频率,高灵敏度对于天文观测至关重要。使用光场中的非经典相关性可以克服此标准的灵敏度带宽限制。在这里,我们研究了内部压缩方法,其中参数放大过程直接在干涉仪腔内部创建了非经典相关性。我们从理论上分析了该方法的局限性,并测量了与传统情况相比灵敏度带宽乘积增加了36%。据我们所知,这是使用内部压缩改善灵敏度带宽产品的第一个实验演示,这为新型光机械力传感设备开辟了道路。

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  • 来源
    《Physical review letters》 |2017年第14期|143601.1-143601.5|共5页
  • 作者单位

    Univ Hamburg, Inst Laserphys, Luruper Chaussee 149, D-22761 Hamburg, Germany|Univ Hamburg, Zentrum Opt Quantentechnol, Luruper Chaussee 149, D-22761 Hamburg, Germany;

    Univ Hamburg, Inst Laserphys, Luruper Chaussee 149, D-22761 Hamburg, Germany|Univ Hamburg, Zentrum Opt Quantentechnol, Luruper Chaussee 149, D-22761 Hamburg, Germany;

    Leibniz Univ Hannover, Inst Gravitat Phys, Callinstr 38, D-30167 Hannover, Germany|Max Planck Inst Gravitat Phys, Albert Einstein Inst, Callinstr 38, D-30167 Hannover, Germany;

    Univ Birmingham, Inst Gravitat Wave Astron, Birmingham B15 2TT, W Midlands, England;

    CALTECH, Theoret Astrophys 350-17, Pasadena, CA 91125 USA;

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