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在使用压缩光的引力波探测器中的压缩正交涨落

Squeezed quadrature fluctuations in a gravitational wave detector using squeezed light.

作者信息

Dwyer S, Barsotti L, Chua S S Y, Evans M, Factourovich M, Gustafson D, Isogai T, Kawabe K, Khalaidovski A, Lam P K, Landry M, Mavalvala N, McClelland D E, Meadors G D, Mow-Lowry C M, Schnabel R, Schofield R M S, Smith-Lefebvre N, Stefszky M, Vorvick C, Sigg D

机构信息

LIGO - Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

Opt Express. 2013 Aug 12;21(16):19047-60. doi: 10.1364/OE.21.019047.

Abstract

Squeezed states of light are an important tool for optical measurements below the shot noise limit and for optical realizations of quantum information systems. Recently, squeezed vacuum states were deployed to enhance the shot noise limited performance of gravitational wave detectors. In most practical implementations of squeezing enhancement, relative fluctuations between the squeezed quadrature angle and the measured quadrature (sometimes called squeezing angle jitter or phase noise) are one limit to the noise reduction that can be achieved. We present calculations of several effects that lead to quadrature fluctuations, and use these estimates to account for the observed quadrature fluctuations in a LIGO gravitational wave detector. We discuss the implications of this work for quantum enhanced advanced detectors and even more sensitive third generation detectors.

摘要

压缩光态是用于低于散粒噪声极限的光学测量以及量子信息系统光学实现的重要工具。最近,压缩真空态被用于提高引力波探测器的散粒噪声极限性能。在大多数压缩增强的实际实现中,压缩正交分量角度与测量正交分量之间的相对涨落(有时称为压缩角抖动或相位噪声)是可实现的噪声降低的一个限制因素。我们给出了导致正交涨落的几种效应的计算结果,并利用这些估计来解释激光干涉引力波天文台(LIGO)引力波探测器中观测到的正交涨落。我们讨论了这项工作对量子增强型先进探测器以及更灵敏的第三代探测器的意义。

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