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Search for Galactic Core-collapse Supernovae in a Decade of Data Taken with the IceCube Neutrino Observatory

5Citations signalées — pas une note de qualité
59Institutions déclarées
14Pays d’affiliation déclarés

Résumé fourni par la source

Abstract The IceCube Neutrino Observatory has been continuously taking data to search for O ( 0.5 – 10 ) s long neutrino bursts since 2007. Even if a Galactic core-collapse supernova is optically obscured or collapses to a black hole instead of exploding, it will be detectable via the O ( 10 ) MeV neutrino burst emitted during the collapse. We discuss a search for such events covering the time between 2008 April 17 and 2019 December 31. Considering the average data taking and analysis uptime of 91.7% after all selection cuts, this is equivalent to 10.735 yr of continuous data taking. In order to test the most conservative neutrino production scenario, the selection cuts were optimized for a model based on an 8.8 solar mass progenitor collapsing to an O–Ne–Mg core. Conservative assumptions on the effects of neutrino oscillations in the exploding star were made. The final selection cut was set to ensure that the probability to detect such a supernova within the Milky Way exceeds 99%. No such neutrino burst was found in the data after performing a blind analysis. Hence, a 90% C.L. upper limit on the rate of core-collapse supernovae out to distances of ≈25 kpc was determined to be 0.23 yr−1. For the more distant Magellanic Clouds, only high neutrino luminosity supernovae will be detectable by IceCube, unless external information on the burst time is available. We determined a model-independent limit by parameterizing the dependence on the neutrino luminosity and the energy spectrum.

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DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.

Titre Crossref
Search for Galactic Core-collapse Supernovae in a Decade of Data Taken with the IceCube Neutrino Observatory
Date Crossref
01/01/2024
Éditeur
American Astronomical Society
Type
journal-article

Ce recoupement confirme des métadonnées liées au DOI. Il ne confirme ni la méthode ni les conclusions de l’étude et ne compte pas comme une seconde source scientifique indépendante.

Institutions déclarées

Loyola University ChicagoDeutsches Elektronen-Synchrotron DESYUniversity of CanterburyUniversity of Wisconsin–MadisonUniversité Libre de BruxellesUniversity of CopenhagenTU Dortmund UniversityUniversity of DelawareMarquette UniversityFriedrich-Alexander-Universität Erlangen-NürnbergHarvard UniversityUniversity of UtahSouth Dakota School of Mines and TechnologyUniversity of California, IrvineUniversity of California, BerkeleyThe Ohio State UniversityRuhr University BochumUppsala UniversityTechnical University of MunichRWTH Aachen UniversityUniversity of RochesterUniversity of Maryland, College ParkUniversity of PaduaUniversity of KansasLawrence Berkeley National LaboratoryKarlsruhe Institute of TechnologyJohannes Gutenberg University MainzGeorgia Institute of TechnologyThe University of AdelaideUniversity of MünsterDrexel UniversityStony Brook UniversitySungkyunkwan UniversityMassachusetts Institute of TechnologyVrije Universiteit BrusselColumbia UniversityPennsylvania State UniversityUniversity of AlabamaStockholm UniversityUCLouvainMichigan State UniversityUniversity of WuppertalChiba UniversitySouthern University and Agricultural and Mechanical CollegeInstitute of Physics, Academia SinicaHumboldt-Universität zu BerlinQueen's UniversityClark Atlanta UniversityThe University of Texas at ArlingtonUniversity of Nevada, Las VegasUniversity of AlbertaUniversity of GenevaYale UniversityMercer UniversityGhent UniversityUniversity of Alaska AnchorageProvidence CollegeUniversity of OxfordUniversity of Wisconsin–River Falls

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Sujets associés

Astrophysics and Cosmic PhenomenaNeutrino Physics ResearchGamma-ray bursts and supernovae

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