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On May 24th, 2023, the Advanced Laser Interferometer Gravitational-Wave Observatory (LIGO), joined by the Advanced Virgo and KAGRA detectors, began the fourth observing run for a two-year-long dedicated search for gravitational waves.
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A. Staley, D. Martynov, R. Abbott, R. X. Adhikari, K. Arai, S. Ballmer, L. Barsotti, A. F. Brooks, R. T. DeRosa, S. Dwyer, A. Effler, M. Evans, P. Fritschel, V. V. Frolov, C. Gray, C. J. Guido, R. Gustafson, M. Heintze, D. Hoak, K. Izumi, K. Kawabe, E. J. King, J. S. Kissel, K. Kokeyama, M. Landry, D. E. McClelland, J. Miller, A. Mullavey, B. O’Reilly, J. G. Rollins, J. R. Sanders, R. M. S. Schofield, D. Sigg, B. J. J. Slagmolen, N. D. Smith-Lefebvre, G. Vajente, R. L. Ward, and C. Wipf, Achieving resonance in the Advanced LIGO gravitational-wave interferometer, Classical and Quantum Gravity 31
2014
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2014
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P. Kwee, J. Miller, T. Isogai, L. Barsotti, and M. Evans, Decoherence and degradation of squeezed states in quantum filter cavities, Phys. Rev. D 90
2014
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P. Fritschel, M. Evans, and V. Frolov, Balanced homodyne readout for quantum limited gravitational wave detectors, Opt. Express 22
2014
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J. Aasi et al. (LIGO Scientific Collaboration), Advanced LIGO, Classical and Quantum Gravity 32
2015
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F. Matichard, B. Lantz, R. Mittleman, K. Mason, J. Kissel, B. Abbott, S. Biscans, J. McIver, R. Abbott, S. Abbott, et al. , Seismic isolation of Advanced LIGO: Review of strategy, instrumentation and performance, Classical and Quantum Gravity 32
2015
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W. Yam, S. Gras, and M. Evans, Multimaterial coatings with reduced thermal noise, Phys. Rev. D 91
2015
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K. Izumi, D. Sigg, and K. Kawabe, Frequency Response of the aLIGO Interferometer: part 3 , Tech. Rep. LIGO-T1500559 (2015)
2015
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M. Granata, A. Amato, L. Balzarini, M. Canepa, J. Degallaix, D. Forest, V. Dolique, L. Mereni, C. Michel, L. Pinard, B. Sassolas, J. Teillon, and G. Cagnoli, Amorphous optical coatings of present gravitational-wave interferometers*, Classical and Quantum Gravity 37
2020
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2020
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G. Vajente, Y. Huang, M. Isi, J. C. Driggers, J. S. Kissel, M. J. Szczepańczyk, and S. Vitale, Machine-learning nonstationary noise out of gravitational-wave detectors, Phys. Rev. D 101
2020
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2020
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C. Whittle, K. Komori, D. Ganapathy, L. McCuller, L. Barsotti, N. Mavalvala, and M. Evans, Optimal detuning for quantum filter cavities, Phys. Rev. D 102
2020
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N. Kijbunchoo, T. McRae, D. Sigg, S. E. Dwyer, H. Yu, L. McCuller, L. Barsotti, C. D. Blair, A. Effler, M. Evans, A. Fernandez-Galiana, V. V. Frolov, F. Matichard, N. Mavalvala, A. Mullavey, B. J. J. Slagmolen, M. Tse, C. Whittle, and D. E. McClelland, Low phase noise squeezed vacuum for future generation gravitational wave detectors, Classical and Quantum Gravity 37
2020
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T. Hardwick, V. J. Hamedan, C. Blair, A. C. Green, and D. Vander-Hyde, Demonstration of dynamic thermal compensation for parametric instability suppression in Advanced LIGO, Class. Quant. Grav. 37
2020
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2021
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D. Davis et al. , LIGO detector characterization in the second and third observing runs, Class. Quant. Grav. 38
2021
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2021
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2021
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A. F. Brooks, G. Vajente, H. Yamamoto, et al. , Point Absorbers in Advanced LIGO, Appl. Opt. 60
2021
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A. Viets and M. Wade, Subtracting Narrow-band Noise from LIGO Strain Data in the Third Observing Run , Tech. Rep. DCC-T2100058 (2021)
2021
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G. Vajente, L. Yang, A. Davenport, M. Fazio, A. Ananyeva, L. Zhang, G. Billingsley, K. Prasai, A. Markosyan, R. Bassiri, M. M. Fejer, M. Chicoine, F. m. c. Schiettekatte, and C. S. Menoni, Low Mechanical Loss TiO 2 : GeO 2 {\mathrm{TiO}}_{2}:{\mathrm{GeO}}_{2} Coatings for Reduced Thermal Noise in Gravitational Wave Interferometers, Phys. Rev. Lett. 127
2021
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F. Wellmann, N. Bode, P. Wessels, L. Overmeyer, J. Neumann, B. Willke, and D. Kracht, Low noise 400 W coherently combined single frequency laser beam for next generation gravitational wave detectors, Opt. Express 29
2021
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S. E. Dwyer, G. L. Mansell, and L. McCuller, Squeezing in gravitational wave detectors, Galaxies 10
2022
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G. Vajente, Data mining and machine learning improve gravitational-wave detector sensitivity, Phys. Rev. D 105
2022
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V. Srivastava, G. Mansell, C. Makarem, M. Noh, R. Abbott, S. Ballmer, G. Billingsley, A. Brooks, H. T. Cao, P. Fritschel, D. Griffith, W. Jia, M. Kasprzack, M. MacInnis, S. Ng, L. Sanchez, C. Torrie, P. Veitch, and F. Matichard, Piezo-deformable mirrors for active mode matching in advanced LIGO, Opt. Express 30
2022
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D. Ganapathy, V. Xu, W. Jia, C. Whittle, M. Tse, L. Barsotti, M. Evans, and L. McCuller, Probing squeezing for gravitational-wave detectors with an audio-band field, Phys. Rev. D 105
2022
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R. Abbott et al. (LIGO Scientific Collaboration, Virgo Collaboration, and KAGRA Collaboration), GWTC-3: Compact Binary Coalescences Observed by LIGO and Virgo during the Second Part of the Third Observing Run, Phys. Rev. X 13
2023
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D. Ganapathy, W. Jia, M. Nakano, V. Xu, N. Aritomi, T. Cullen, N. Kijbunchoo, S. E. Dwyer, A. Mullavey, L. McCuller, et al. , Broadband Quantum Enhancement of the LIGO Detectors with Frequency-Dependent Squeezing, Phys. Rev. X 13
2023
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J. Glanzer, S. Soni, J. Spoon, A. Effler, and G. González, Noise in the LIGO livingston gravitational wave observatory due to trains, Classical and Quantum Gravity 40
2023
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R. Abbott et al. (The LIGO Scientific Collaboration and the Virgo Collaboration), GWTC-2.1: Deep extended catalog of compact binary coalescences observed by LIGO and Virgo during the first half of the third observing run, Phys. Rev. D 109
2024
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A. G. Abac et al. (LIGO Scientific Collaboration, Virgo Collaboration, and KAGRA Collaboration), Observation of Gravitational Waves from the Coalescence of a 2.5–4.5 M ⊙ \odot Compact Object and a Neutron Star, The Astrophysical Journal Letters 970
2024
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W. Jia, V. Xu, K. Kuns, M. Nakano, L. Barsotti, M. Evans, N. Mavalvala, and members of the LIGO Scientific Collaboration†, Squeezing the quantum noise of a gravitational-wave detector below the standard quantum limit, Science 385
2024
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S. Soni, J. Glanzer, A. Effler, V. Frolov, G. González, A. Pele, and R. Schofield, Modeling and reduction of high frequency scatter noise at LIGO Livingston, Class. Quant. Grav. 41
2024
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