19 research outputs found

    All-sky Search for High-Energy Neutrinos from Gravitational Wave Event GW170104 with the ANTARES Neutrino Telescope

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    [EN] Advanced LIGO detected a significant gravitational wave signal (GW170104) originating from the coalescence of two black holes during the second observation run on January 4th, 2017. Anall-sky high-energy neutrino follow-up search has been made using data from the Antares neutrino telescope, including both upgoing and downgoing events in two separate analyses. No neutrino candidates were found within +/- 500 s around the GW event time nor any time clustering of events over an extended time window of +/- 3 months. The non-detection is used to constrain isotropic-equivalent high-energy neutrino emission from GW170104 to less than similar to 1.2 x 10(55) erg for a E-2 spectrum. This constraint is valid in the energy range corresponding to the 5-95% quantiles of the neutrino flux [3.2 TeV; 3.6 PeV], if the GW emitter was below the Antares horizon at the alert time.The ANTARES Collaboration is grateful to the LIGO Scientific Collaboration and the Virgo Collaboration for the setting up of an impressive follow-up observation program, and for sharing invaluable scientific information for the benefit of the emerging multi-messenger astronomy. The authors acknowledge the financial support of the funding agencies: Centre National de la Recherche Scientifique (CNRS), Commissariat a l'energie atomique et aux energies alternatives (CEA), Commission Europeenne (FEDER fund and Marie Curie Program), Institut Universitaire de France (IUF), IdEx program and UnivEarthS Labex program at Sorbonne Paris Cite (ANR-10-LABX-0023 and ANR-11-IDEX-0005-02), Labex OCEVU (ANR-11-LABX-0060) and the A*MIDEX project (ANR-11-IDEX-0001-02), Region Ile-de-France (DIM-ACAV), Region Alsace (contrat CPER), Region Provence-Alpes-Cote d'Azur, Departement du Var and Ville de La Seyne-sur-Mer, France; Bundesministerium fur Bildung und Forschung (BMBF), Germany; Istituto Nazionale di Fisica Nucleare (INFN), Italy; Nederlandse organisatie voor Wetenschappelijk Onderzoek (NWO), the Netherlands; Council of the President of the Russian Federation for young scientists and leading scientific schools supporting grants, Russia; National Authority for Scientific Research (ANCS), Romania; Ministerio de Economia y Competitividad (MINECO): Plan Estatal de Investigacion (refs. FPA2015-65150-C3-1-P, -2-P and -3-P, (MINECO/FEDER)), Severo Ochoa Centre of Excellence and MultiDark Consolider (MINECO), and Prometeo and Grisolia programs (Generalitat Valenciana), Spain; Ministry of Higher Education, Scientific Research and Professional Training, Morocco.Albert, A.; Andre, M.; Anghinolfi, M.; Anton, G.; Ardid Ramírez, M.; Aubert, J.; Avgitas, T.... (2017). All-sky Search for High-Energy Neutrinos from Gravitational Wave Event GW170104 with the ANTARES Neutrino Telescope. The European Physical Journal C. 77(12):1-7. https://doi.org/10.1140/epjc/s10052-017-5451-zS177712B.P. Abbott et al., Phys. Rev. Lett. 116, 061102 (2016)B.P. Abbott et al., Phys. Rev. Lett. 116, 241103 (2016)B.P. Abbott et al., Phys. Rev. Lett. 118, 221101 (2017)P. Mészáros, Rep. Prog. Phys. 69, 2259 (2006)E. Waxman, J. Bahcall, Phys. Rev. Lett. 78, 2292 (1997)A. Beloborodov, Mon. Not. R. Astron. Soc. 407, 1033 (2010)R. Perna et al., Astrophys. J. Lett. 821, L18 (2016)K. Murase et al., Astrophys. J. Lett. 822, L9 (2016)K. Kotera, J. Silk, Astrophys. J. Lett. 823, L29 (2016)I. Bartos et al., Astrophys. J. 835, 2 (2017)S. Adrián-Martínez et al., JCAP 02, 062 (2016)The GCN circulars published by the collaborating astronomers related to GW170104 are archived at http://gcn.gsfc.nasa.gov/other/G268556.gcn3S. Adrián-Martínez et al., J. Instrum. 7, T08002 (2012)J.A. Aguilar et al., Astropart. Phys. 34, 539 (2011)J. Aguilar et al., Nucl. Instrum. Methods A 570, 107 (2007)A. Kappes et al., J. Phys. Conf. Ser. 60, 243 (2007)M. Ageron et al., Nucl. Instrum. Methods A 656, 11 (2011)J. Veitch et al., Phys. Rev. D. 91, 042003 (2015)B. Baret et al., Astropart. Phys. 35, 1 (2011)S. Adrián-Martínez et al., Phys. Rev. D. 93, 122010 (2016)S. Adrián-Martínez et al., Phys. Rev. D. 96, 022005 (2017)S. Adrián-Martínez et al., Astrophys. J. 760, 53 (2012)A. Albert et al., Phys. Rev. D. 96, 082001 (2017)A. Margiotta, Nucl. Instrum. Methods A 725, 98 (2013)L. Fusco, A. Margiotta, Eur. Phys. J. Web Conf. 116, 02002 (2016)S. Adrián-Martínez et al., Eur. Phys. J. C 77, 20 (2017)J. Braun et al., Astropart. Phys. 29, 299 (2008)M.G. Aartsen et al., Science 342, 1242856 (2013)L. Singer et al., Astrophys. J. Lett. 829, 15 (2016

    Multi-messenger observations of a binary neutron star merger

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    On 2017 August 17 a binary neutron star coalescence candidate (later designated GW170817) with merger time 12:41:04 UTC was observed through gravitational waves by the Advanced LIGO and Advanced Virgo detectors. The Fermi Gamma-ray Burst Monitor independently detected a gamma-ray burst (GRB 170817A) with a time delay of ~1.7 s with respect to the merger time. From the gravitational-wave signal, the source was initially localized to a sky region of 31 deg2 at a luminosity distance of 40+8-8 Mpc and with component masses consistent with neutron stars. The component masses were later measured to be in the range 0.86 to 2.26 Mo. An extensive observing campaign was launched across the electromagnetic spectrum leading to the discovery of a bright optical transient (SSS17a, now with the IAU identification of AT 2017gfo) in NGC 4993 (at ~40 Mpc) less than 11 hours after the merger by the One- Meter, Two Hemisphere (1M2H) team using the 1 m Swope Telescope. The optical transient was independently detected by multiple teams within an hour. Subsequent observations targeted the object and its environment. Early ultraviolet observations revealed a blue transient that faded within 48 hours. Optical and infrared observations showed a redward evolution over ~10 days. Following early non-detections, X-ray and radio emission were discovered at the transient’s position ~9 and ~16 days, respectively, after the merger. Both the X-ray and radio emission likely arise from a physical process that is distinct from the one that generates the UV/optical/near-infrared emission. No ultra-high-energy gamma-rays and no neutrino candidates consistent with the source were found in follow-up searches. These observations support the hypothesis that GW170817 was produced by the merger of two neutron stars in NGC4993 followed by a short gamma-ray burst (GRB 170817A) and a kilonova/macronova powered by the radioactive decay of r-process nuclei synthesized in the ejecta

    Long-term monitoring of the ANTARES optical module efficiencies using K-40 decays in sea water

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    [EN] Cherenkov light induced by radioactive decay products is one of the major sources of background light for deep-sea neutrino telescopes such as ANTARES. These decays are at the same time a powerful calibration source. Using data collected by the ANTARES neutrino telescope from mid 2008 to 2017, the time evolution of the photon detection ef¿ciency of optical modules is studied. A modest loss of only 20% in 9 years is observed. The relative time calibration between adjacent modules is derived as well.Albert, A.; Andre, M.; Anghinolfi, M.; Anton, G.; Ardid Ramírez, M.; Aubert, J.; Aublin, J.... (2018). Long-term monitoring of the ANTARES optical module efficiencies using K-40 decays in sea water. The European Physical Journal C. 78(8):1-8. https://doi.org/10.1140/epjc/s10052-018-6132-2S18788M. Ageron et al., ANTARES: The first undersea neutrino telescope. Nuclear Instruments and Methods in Physics Research A 656, 11–38 (2011)A. Albert et al., First all-flavor neutrino pointlike source search with the ANTARES neutrino telescope. Physical Review D 96, 082001 (2017)A. Albert et al., All-flavor Search for a Diffuse Flux of Cosmic Neutrinos with Nine Years of ANTARES Data. The Astrophysical Journal Letters 853, L7 (2018)B.P. Abbott et al., Multi-messenger Observations of a Binary Neutron Star Merger. The Astrophysical Journal Letters 848, L12 (2017)S. Adrián-Martínez et al., Measurement of atmospheric neutrino oscillations with the ANTARES neutrino telescope. Physics Letters B 714, 224–230 (2012)A. Albert et al., Search for relativistic magnetic monopoles with five years of the ANTARES detector data. Journal of High Energy Physics 7, 54 (2017)S. Adrián-Martínez et al., Limits on dark matter annihilation in the sun using the ANTARES neutrino telescope. Physics Letters B 759, 69–74 (2016)A. Albert et al., Results from the search for dark matter in the Milky Way with 9 years of data of the ANTARES neutrino telescope. Physics Letters B 769, 249–254 (2017)M.G. Aartsen et al., The IceCube Neutrino Observatory: instrumentation and online systems. Journal of Instrumentation 12, P03012 (2017)K. Abe et al., Calibration of the Super-Kamiokande detector. Nuclear Instruments and Methods in Physics Research A 737, 253–272 (2014)P. Amram et al., The ANTARES optical module. Nuclear Instruments and Methods in Physics Research A 484, 369–383 (2002)S. Adrián-Martínez et al., The positioning system of the ANTARES Neutrino Telescope. Journal of Instrumentation 7, T08002 (2012)J.A. Aguilar et al., Performance of the front-end electronics of the ANTARES neutrino telescope. Nuclear Instruments and Methods in Physics Research A 622, 59–73 (2010)J.A. Aguilar et al., The data acquisition system for the ANTARES neutrino telescope. Nuclear Instruments and Methods in Physics Research A 570, 107–116 (2007)J.A. Aguilar et al., Measurement of the atmospheric muon flux with a 4 GeV threshold in the ANTARES neutrino telescope. Astroparticle Physics 33, 86–90 (2010)J.A. Aguilar et al., Transmission of light in deep sea water at the site of the ANTARES neutrino telescope. Astroparticle Physics 23, 131–155 (2005)S. Kim et al., PubChem Substance and Compound databases. Nucleic Acids Research 44, 1202–13 (2016)G. Audi et al., The NUBASE evaluation of nuclear and decay properties. Nuclear Physics A 729, 3–128 (2003)J. Floor Anthoni. The chemical composition of seawater. http://www.seafriends.org.nz/oceano/seawater.htmJ.R. De Laeter et al., Atomic Weights of the Elements: Review 2000 (IUPAC Technical Report). Pure Applied Chemistry 75, 683–800 (2003)P. Amram et al., Background light in potential sites for the ANTARES undersea neutrino telescope. Astroparticle Physics 13, 127–136 (2000)C. Tamburini et al., Deep-sea bioluminescence blooms after dense water formation at the ocean surface. PLOS ONE, 8(7), (2013)J.A. Aguilar et al., Time calibration of the ANTARES neutrino telescope. Astroparticle Physics 34, 539–549 (2011)M. Ageron et al., The ANTARES optical beacon system. Nuclear Instruments and Methods in Physics Research A 578, 498–509 (2007)S. Adrián-Martínez et al., Time calibration with atmospheric muon tracks in the ANTARES neutrino telescope. Astroparticle Physics 78, 43–51 (2016)S. Adrián-Martínez et al., Letter of Intent for KM3NeT 2.0. Journal of Physics G. Nuclear Physics 43(8), 084001 (2016
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