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Accès ouvert déclaré 2023 article

Searches for connections between dark matter and high-energy neutrinos with IceCube

25Citations signalées, ce qui n’est pas une note de qualité
58Institutions déclarées
14Pays d’affiliation déclarés

Rattachement africain : us, nz, be, dk, se, de, ca, ch, au, kr, bd, tw, jp, gb. Niveau de preuve : code pays fourni par la source.

Le résumé fourni par la source

Abstract In this work, we present the results of searches for signatures of dark matter decay or annihilation into Standard Model particles, and secret neutrino interactions with dark matter. Neutrinos could be produced in the decay or annihilation of galactic or extragalactic dark matter. Additionally, if an interaction between dark matter and neutrinos exists then dark matter will interact with extragalactic neutrinos. In particular galactic dark matter will induce an anisotropy in the neutrino sky if this interaction is present. We use seven and a half years of the High-Energy Starting Event (HESE) sample data, which measures neutrinos in the energy range of approximately 60 TeV to 10 PeV, to study these phenomena. This all-sky event selection is dominated by extragalactic neutrinos. For dark matter of ∼ 1 PeV in mass, we constrain the velocity-averaged annihilation cross section to be smaller than 10 -23 cm 3 /s for the exclusive μ + μ - channel and 10 -22 cm 3 /s for the bb̅ channel. For the same mass, we constrain the lifetime of dark matter to be larger than 10 28 s for all channels studied, except for decaying exclusively to bb̅ where it is bounded to be larger than 10 27 s. Finally, we also search for evidence of astrophysical neutrinos scattering on galactic dark matter in two scenarios. For fermionic dark matter with a vector mediator, we constrain the dimensionless coupling associated with this interaction to be less than 0.1 for dark matter mass of 0.1 GeV and a mediator mass of 10 -4 GeV. In the case of scalar dark matter with a fermionic mediator, we constrain the coupling to be less than 0.1 for dark matter and mediator masses below 1 MeV.

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Le contrôle bibliographique ouvert

DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.

Titre Crossref
Searches for connections between dark matter and high-energy neutrinos with IceCube
Date Crossref
01/10/2023
Éditeur
IOP Publishing
Type
journal-article

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

Les institutions déclarées

Loyola University ChicagoUniversity of CanterburyUniversité Libre de BruxellesUniversity of CopenhagenStockholm UniversityTU Dortmund UniversityKarlsruhe Institute of TechnologyUniversity of DelawareMarquette UniversityPennsylvania State UniversityFriedrich-Alexander-Universität Erlangen-NürnbergInstitute of Particle PhysicsUniversity of Wisconsin–MadisonMassachusetts Institute of TechnologySouth Dakota School of Mines and TechnologyUniversity of California, IrvineUniversity of California, BerkeleyThe Ohio State UniversityUniversity of WuppertalRuhr University BochumUppsala UniversityTechnical University of MunichUniversity of RochesterUniversity of Maryland, College ParkUniversity of KansasLawrence Berkeley National LaboratoryRWTH Aachen UniversityJohannes Gutenberg University MainzGeorgia Institute of TechnologyUniversity of GenevaThe University of AdelaideUniversity of MünsterDrexel UniversityStony Brook UniversitySungkyunkwan UniversityMichigan State UniversityVrije Universiteit BrusselUniversity of AlabamaUCLouvainSouthern University and Agricultural and Mechanical CollegeSouthern UniversityInstitute of Physics, Academia SinicaHumboldt-Universität zu BerlinUniversity of Wisconsin SystemQueen's UniversityUniversity of AlbertaChiba UniversityClark Atlanta UniversityThe University of Texas at ArlingtonUniversity of California, Los AngelesYale UniversityMercer UniversityGhent UniversityUniversity of Alaska AnchorageUniversity of UtahUniversity of OxfordScience OxfordUniversity of Wisconsin–River Falls

Une affiliation ne permet pas de déduire la nationalité d’un auteur.

Les sujets associés

Dark Matter and Cosmic PhenomenaAstrophysics and Cosmic PhenomenaParticle physics theoretical and experimental studies

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