4.8 Article

Audio-Band Frequency-Dependent Squeezing for Gravitational-Wave Detectors

Journal

PHYSICAL REVIEW LETTERS
Volume 116, Issue 4, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevLett.116.041102

Keywords

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Funding

  1. National Science Foundation
  2. LIGO Laboratory [PHY-0757058]
  3. Department of Energy Office of Science Graduate Fellowship Program under DOE [DE-AC05-06OR23100]

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Quantum vacuum fluctuations impose strict limits on precision displacement measurements, those of interferometric gravitational-wave detectors among them. Introducing squeezed states into an interferometer's readout port can improve the sensitivity of the instrument, leading to richer astrophysical observations. However, optomechanical interactions dictate that the vacuum's squeezed quadrature must rotate by 90 degrees around 50 Hz. Here we use a 2-m-long, high-finesse optical resonator to produce frequency-dependent rotation around 1.2 kHz. This demonstration of audio-band frequency-dependent squeezing uses technology and methods that are scalable to the required rotation frequency and validates previously developed theoretical models, heralding application of the technique in future gravitational-wave detectors.

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