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dc.contributor.authorMavalvala, Nergis
dc.date.accessioned2022-04-28T12:21:57Z
dc.date.available2022-04-28T12:21:57Z
dc.date.issued2021
dc.identifier.urihttps://hdl.handle.net/1721.1/142161
dc.description.abstractGravitational Wave interferometers achieve their profound sensitivity by combining a Michelson interferometer with optical cavities, suspended masses, and now, squeezed quantum states of light. These states modify the measurement process of the LIGO, VIRGO and GEO600 interferometers to reduce the quantum noise that masks astrophysical signals; thus, improvements to squeezing are essential to further expand our gravitational view of the universe. Further reducing quantum noise will require both lowering decoherence from losses as well more sophisticated manipulations to counter the quantum back-action from radiation pressure. Both tasks require fully understanding the physical interactions between squeezed light and the many components of km-scale interferometers. To this end, data from both LIGO observatories in observing run three are expressed using frequency-dependent metrics to analyze each detector's quantum response to squeezed states. The response metrics are derived and used to concisely describe physical mechanisms behind squeezing's simultaneous interaction with transverse-mode selective optical cavities and the quantum radiation pressure noise of suspended mirrors. These metrics and related analysis are broadly applicable for cavity-enhanced optomechanics experiments that incorporate external squeezing, and -- for the first time -- give physical descriptions of every feature so far observed in the quantum noise of the LIGO detectors.en_US
dc.language.isoen
dc.publisherAmerican Physical Society (APS)en_US
dc.relation.isversionof10.1103/PHYSREVD.104.062006en_US
dc.rightsArticle is made available in accordance with the publisher's policy and may be subject to US copyright law. Please refer to the publisher's site for terms of use.en_US
dc.sourceAPSen_US
dc.titleLIGO’s quantum response to squeezed statesen_US
dc.typeArticleen_US
dc.identifier.citationMavalvala, Nergis. 2021. "LIGO’s quantum response to squeezed states." Physical Review D, 104 (6).
dc.contributor.departmentLIGO (Observatory : Massachusetts Institute of Technology)
dc.relation.journalPhysical Review Den_US
dc.eprint.versionFinal published versionen_US
dc.type.urihttp://purl.org/eprint/type/JournalArticleen_US
eprint.statushttp://purl.org/eprint/status/PeerRevieweden_US
dc.date.updated2022-04-28T12:12:37Z
dspace.orderedauthorsMcCuller, L; Dwyer, SE; Green, AC; Yu, H; Kuns, K; Barsotti, L; Blair, CD; Brown, DD; Effler, A; Evans, M; Fernandez-Galiana, A; Fritschel, P; Frolov, VV; Kijbunchoo, N; Mansell, GL; Matichard, F; Mavalvala, N; McClelland, DE; McRae, T; Mullavey, A; Sigg, D; Slagmolen, BJJ; Tse, M; Vo, T; Ward, RL; Whittle, C; Abbott, R; Adams, C; Adhikari, RX; Ananyeva, A; Appert, S; Arai, K; Areeda, JS; Asali, Y; Aston, SM; Austin, C; Baer, AM; Ball, M; Ballmer, SW; Banagiri, S; Barker, D; Bartlett, J; Berger, BK; Betzwieser, J; Bhattacharjee, D; Billingsley, G; Biscans, S; Blair, RM; Bode, N; Booker, P; Bork, R; Bramley, A; Brooks, AF; Buikema, A; Cahillane, C; Cannon, KC; Chen, X; Ciobanu, AA; Clara, F; Compton, CM; Cooper, SJ; Corley, KR; Countryman, ST; Covas, PB; Coyne, DC; Datrier, LEH; Davis, D; Di Fronzo, C; Dooley, KL; Driggers, JC; Etzel, T; Evans, TM; Feicht, J; Fulda, P; Fyffe, M; Giaime, JA; Giardina, KD; Godwin, P; Goetz, E; Gras, S; Gray, C; Gray, R; Gustafson, EK; Gustafson, R; Hanks, J; Hanson, J; Hardwick, T; Hasskew, RK; Heintze, MC; Helmling-Cornell, AF; Holland, NA; Jones, JD; Kandhasamy, S; Karki, S; Kasprzack, M; Kawabe, K; King, PJ; Kissel, JS; Kumar, R; Landry, M; Lane, BB; Lantz, B; Laxen, M; Lecoeuche, YK; Leviton, J; Liu, J; Lormand, M; Lundgren, AP; Macas, R; MacInnis, M; Macleod, DM; Márka, S; Márka, Z; Martynov, DV; Mason, K; Massinger, TJ; McCarthy, R; McCormick, S; McIver, J; Mendell, G; Merfeld, K; Merilh, EL; Meylahn, F; Mistry, T; Mittleman, R; Moreno, G; Mow-Lowry, CM; Mozzon, S; Nelson, TJN; Nguyen, P; Nuttall, LK; Oberling, J; Oram, RJ; Osthelder, C; Ottaway, DJ; Overmier, H; Palamos, JR; Parker, W; Payne, E; Pele, A; Penhorwood, R; Perez, CJ; Pirello, M; Radkins, H; Ramirez, KE; Richardson, JW; Riles, K; Robertson, NA; Rollins, JG; Romel, CL; Romie, JH; Ross, MP; Ryan, K; Sadecki, T; Sanchez, EJ; Sanchez, LE; Saravanan, TR; Savage, RL; Schaetzl, D; Schnabel, R; Schofield, RMS; Schwartz, E; Sellers, D; Shaffer, T; Smith, JR; Soni, S; Sorazu, B; Spencer, AP; Strain, KA; Sun, L; Szczepańczyk, MJ; Thomas, M; Thomas, P; Thorne, KA; Toland, K; Torrie, CI; Traylor, G; Urban, AL; Vajente, G; Valdes, G; Vander-Hyde, DC; Veitch, PJ; Venkateswara, K; Venugopalan, G; Viets, AD; Vorvick, C; Wade, M; Warner, J; Weaver, B; Weiss, R; Willke, B; Wipf, CC; Xiao, L; Yamamoto, H; Yu, H; Zhang, L; Zucker, ME; Zweizig, Jen_US
dspace.date.submission2022-04-28T12:12:38Z
mit.journal.volume104en_US
mit.journal.issue6en_US
mit.licensePUBLISHER_POLICY
mit.metadata.statusAuthority Work and Publication Information Neededen_US


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