论文标题
量子过滤腔的最佳失沟
Optimal detuning for quantum filter cavities
论文作者
论文摘要
真空量子波动对重力波干涉仪的灵敏度施加了根本的限制,后者是有史以来最敏感的精度测量设备之一。传统挤压真空的注入会减少一个正交中的量子噪声,而另一个正则噪声增加。虽然这种方法在第三次观察过程(O3)期间提高了高级LIGO和高级处女座干涉仪的敏感性,但未来的手臂功率和挤压水平的改善将使辐射压力噪声在最前沿。通过减轻这种辐射压力噪声来安装用于频率的挤压滤波器的滤波腔可为宽带减少量子噪声,这是针对当前所有未来重力波检测器计划的基线方法。滤波器的设计和操作需要仔细考虑干涉仪光学力学以及挤压降解过程。在本文中,我们执行深入分析以确定滤波器腔的最佳工作点。我们将模型与数值工具一起使用,以研究将在即将到来的高级LIGO探测器的“ A+”升级中安装的滤波器的含义。
Vacuum quantum fluctuations impose a fundamental limit on the sensitivity of gravitational-wave interferometers, which rank among the most sensitive precision measurement devices ever built. The injection of conventional squeezed vacuum reduces quantum noise in one quadrature at the expense of increasing noise in the other. While this approach improved the sensitivity of the Advanced LIGO and Advanced Virgo interferometers during their third observing run (O3), future improvements in arm power and squeezing levels will bring radiation pressure noise to the forefront. Installation of a filter cavity for frequency-dependent squeezing provides broadband reduction of quantum noise through the mitigation of this radiation pressure noise, and it is the baseline approach planned for all of the future gravitational-wave detectors currently conceived. The design and operation of a filter cavity requires careful consideration of interferometer optomechanics as well as squeezing degradation processes. In this paper, we perform an in-depth analysis to determine the optimal operating point of a filter cavity. We use our model alongside numerical tools to study the implications for filter cavities to be installed in the upcoming "A+" upgrade of the Advanced LIGO detectors.