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千米级引力波天文台中6分贝量子噪声降低的首次演示。

First Demonstration of 6 dB Quantum Noise Reduction in a Kilometer Scale Gravitational Wave Observatory.

作者信息

Lough James, Schreiber Emil, Bergamin Fabio, Grote Hartmut, Mehmet Moritz, Vahlbruch Henning, Affeldt Christoph, Brinkmann Marc, Bisht Aparna, Kringel Volker, Lück Harald, Mukund Nikhil, Nadji Severin, Sorazu Borja, Strain Kenneth, Weinert Michael, Danzmann Karsten

机构信息

Institut für Gravitationsphysik, Leibniz Universität Hannover and Max-Planck-Institut für Gravitationsphysik (Albert-Einstein-Institut), Callinstraße 38, 30167 Hannover, Germany.

School of Physics and Astronomy, Cardiff University, The Parade, CF24 3AA, United Kingdom.

出版信息

Phys Rev Lett. 2021 Jan 29;126(4):041102. doi: 10.1103/PhysRevLett.126.041102.

Abstract

Photon shot noise, arising from the quantum-mechanical nature of the light, currently limits the sensitivity of all the gravitational wave observatories at frequencies above one kilohertz. We report a successful application of squeezed vacuum states of light at the GEO 600 observatory and demonstrate for the first time a reduction of quantum noise up to 6.03±0.02  dB in a kilometer scale interferometer. This is equivalent at high frequencies to increasing the laser power circulating in the interferometer by a factor of 4. Achieving this milestone, a key goal for the upgrades of the advanced detectors required a better understanding of the noise sources and losses and implementation of robust control schemes to mitigate their contributions. In particular, we address the optical losses from beam propagation, phase noise from the squeezing ellipse, and backscattered light from the squeezed light source. The expertise gained from this work carried out at GEO 600 provides insight toward the implementation of 10 dB of squeezing envisioned for third-generation gravitational wave detectors.

摘要

由光的量子力学性质产生的光子散粒噪声,目前限制了所有频率高于1千赫兹的引力波天文台的灵敏度。我们报告了在GEO 600天文台成功应用光的压缩真空态,并首次在千米级干涉仪中证明了量子噪声降低高达6.03±0.02分贝。在高频下,这相当于将干涉仪中循环的激光功率提高了4倍。实现这一里程碑,作为先进探测器升级的一个关键目标,需要更好地理解噪声源和损耗,并实施稳健的控制方案来减轻它们的影响。特别是,我们解决了光束传播的光学损耗、压缩椭圆的相位噪声以及压缩光源的背向散射光。在GEO 600开展的这项工作所获得的专业知识,为第三代引力波探测器设想的10分贝压缩的实现提供了见解。

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