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The Standard Quantum Limit (SQL) in interferometric displacement measurement imposes a restriction on the precision of the measurement due to its quantum back-action noise.
Classical and quantum restrictions on the detection of weak disturbances of a macroscopic oscillator
Braginsky, V. B · 1968
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Quantum-mechanical noise in an interferometer
Caves, C. M · 1981
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R. W. P. Drever, J. L. Hall, F. V. Kowalski, J. Hough, G. M. Ford, A. J. Munley, and H. Ward, “Laser phase and frequency stabilization using an optical resonator,” Applied Physics B
1983
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M. J. Collett and C. W. Gardiner, “Squeezing of intracavity and traveling-wave light fields produced in parametric amplification,” Phys. Rev. A
1984
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C. W. Gardiner and M. J. Collett, “Input and output in damped quantum systems: Quantum stochastic differential equations and the master equation,” Phys. Rev. A
1985
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Conversion of conventional gravitational-wave interferometers into quantum nondemolition interferometers by modifying their input and/or output optics
Kimble, H. J., Levin, Y., Matsko, A. B., Thorne, K. S. & Vyatchanin, S. P · 2001
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Quantum noise in second generation, signal-recycled laser interferometric gravitational-wave detectors
Buonanno, A. & Chen, Y · 2001
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Einstein-podolsky-rosen sideband entanglement in broadband squeezed light
Zhang, J · 2003
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Experimental characterization of frequency-dependent squeezed light
Chelkowski, S. et al · 2005
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Frequency-dependent squeeze-amplitude attenuation and squeeze-angle rotation by electromagnetically induced transparency for gravitational-wave interferometers
Mikhailov, E. E., Goda, K., Corbitt, T. & Mavalvala, N · 2006
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Coherent control of vacuum squeezing in the gravitational-wave detection band
Vahlbruch, H. et al · 2006
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Observation of -9 dB quadrature squeezing with improvement of phase stability in homodyne measurement
Takeno, Y., Yukawa, M., Yonezawa, H. & Furusawa, A · 2007
Cited alongside, same era.
Towards einstein-podolsky-rosen quantum channel multiplexing
Hage, B., Samblowski, A. & Schnabel, R · 2010
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B. Hage, A. Samblowski, and R. Schnabel, “Towards einstein-podolsky-rosen quantum channel multiplexing,” Phys. Rev. A
2010
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Backscatter tolerant squeezed light source for advanced gravitational-wave detectors
Chua, S. S. Y. et al · 2011
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First long-term application of squeezed states of light in a gravitational-wave observatory
Grote, H. et al · 2013
Cited alongside, same era.
Enhanced sensitivity of the ligo gravitational wave detector by using squeezed states of light
Advanced Virgo: a second-generation interferometric gravitational wave detector
The VIRGO Collaboration · 2015
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Optomechanical design and construction of a vacuum-compatible optical parametric oscillator for generation of squeezed light
Wade, A. R. et al · 2016
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Detection of 15 dB squeezed states of light and their application for the absolute calibration of photoelectric quantum efficiency
Vahlbruch, H., Mehmet, M., Danzmann, K. & Schnabel, R · 2016
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Ultra-low phase noise squeezed vacuum source for gravitational wave detectors
Oelker, E. et al · 2016
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Audio-band frequency-dependent squeezing for gravitational-wave detectors
Oelker, E. et al · 2016
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The LIGO Scientific Collaboration · 2013
Cited alongside, same era.
Realistic filter cavities for advanced gravitational wave detectors
Evans, M., Barsotti, L., Kwee, P., Harms, J. & Miao, H · 2013
Cited alongside, same era.
Cavity optomechanics
Aspelmeyer, M., Kippenberg, T. J. & Marquardt, F · 2014
Cited alongside, same era.
Narrowing the filter-cavity bandwidth in gravitational-wave detectors via optomechanical interaction
Ma, Y. et al · 2014
Cited alongside, same era.
Decoherence and degradation of squeezed states in quantum filter cavities
Kwee, P., Miller, J., Isogai, T., Barsotti, L. & Evans, M · 2014
Cited alongside, same era.
Advanced LIGO
The LIGO Scientific Collaboration · 2015
Cited alongside, same era.
Estimation of losses in a 300 m filter cavity and quantum noise reduction in the kagra gravitational-wave detector
Capocasa, E. et al · 2016
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GW170817: Observation of gravitational waves from a binary neutron star inspiral
The LIGO Scientific Collaboration. & VIRGO Collaboration · 2017
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Multi-messenger observations of a binary neutron star merger
GROND, SALT Group, OzGrav,CAASTROs, DFN, DES, INTEGRAL, Virgo, Insight-HXMT, MAXI Team, J-GEM, RATIR, ATLAS, IceCube,LWA, ePESSTO, GRAWITA, RIMAS, SKA South Africa/MeerKAT, H.E.S.S., Fermi Large Area Telescope, 1M2HTeam, IKI-GW Follow-up, Fermi GBM, Pi of Sky, DWF (Deeper Wider Faster Program), MASTER, AstroSatCadmium Zinc Telluride Imager Team, Swift, PierreAuger, ASKAP, VINROUGE, JAGWAR, Chandra Team at McGill University, TTU-NRAO, GROWTH, AGILETeam, MWA, ATCA, AST3, TOROS, Pan-STARRS, NuSTAR, BOOTES, CaltechNRAO, LIGO Scientific, High Time Resolution Universe Survey, Nordic Optical Telescope, Las Cumbres Observatory Group, TZAC Con-sortium, LOFAR, IPN, DLT40, Texas Tech University, HAWC, ANTARES, KU, Dark Energy Camera GW-EM,CALET, Euro VLBI Team, ALMA · 2017
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Proposal for gravitational-wave detection beyond the standard quantum limit through EPR entanglement
Ma, Y. et al · 2017
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Broadband sensitivity enhancement of detuned dual-recycled michelson interferometers with epr entanglement
Brown, D. D. et al · 2017
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Enhanced detection of a low-frequency signal by using broad squeezed light and a bichromatic local oscillator
Li, W., Jin, Y., Yu, X. & Zhang, J · 2017
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