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A combined maximum-likelihood analysis of the high-energy astrophysical neutrino flux measured with IceCube

cnea.tipodocumentoARTÍCULO CIENTÍFICO
dc.contributor.authorAartsen, M. G.
dc.contributor.authorAbraham, K.
dc.contributor.authorAckermann, M.
dc.contributor.authorAdams, J.
dc.contributor.authorAguilar, J. A.
dc.contributor.authorGolup, Geraldina Tamara
dc.contributor.authorWallraff, M.
dc.contributor.authorWandkowsky, N.
dc.contributor.authorWeaver, Ch.
dc.contributor.authorWendt, C.
dc.contributor.authorWesterhoff, S.
dc.contributor.authorWhelan, B. J.
dc.contributor.authorWhitehorn, N.
dc.contributor.authorWichary, C.
dc.contributor.authorWiebe, K.
dc.contributor.authorWiebusch, C. H.
dc.contributor.authorWille, L.
dc.contributor.authorWilliams, D. R.
dc.contributor.authorWissing, H.
dc.contributor.authorWolf, M.
dc.contributor.authorWood, T. R.
dc.contributor.authorWoschnagg, K.
dc.contributor.authorXu, D. L.
dc.contributor.authorXu, X. W.
dc.contributor.authorXu, Y.
dc.contributor.authorYanez, J. P.
dc.contributor.authorYodh, G.
dc.contributor.authorYoshida, S.
dc.contributor.authorZarzhitsky, P.
dc.contributor.authorZoll, M.
dc.contributor.authorThe IceCube Collaboration
dc.date.accessioned2025-12-11T23:07:57Z
dc.date.available2025-12-11T23:07:57Z
dc.date.issued2015-08-13
dc.description.abstractEvidence for an extraterrestrial flux of high-energy neutrinos has now been found in multiple searches with the IceCube detector. The first solid evidence was provided by a search for neutrino events with deposited energies > 30 TeV and interaction vertices inside the instrumented volume. Recent analyses suggest that the extraterrestrial flux extends to lower energies and is also visible with throughgoing, νμ-induced tracks from the Northern Hemisphere. Here, we combine the results from six different IceCube searches for astrophysical neutrinos in a maximum-likelihood analysis. The combined event sample features high-statistics samples of shower-like and track-like events. The data are fit in up to three observables: energy, zenith angle, and event topology. Assuming the astrophysical neutrino flux to be isotropic and to consist of equal flavors at Earth, the all-flavor spectrum with neutrino energies between 25 TeV and 2.8 PeV is well described by an unbroken power law with best-fit spectral index −2.50 ± 0.09 and a flux at 100 TeV of ({6.7}_{-1.2}^{+1.1})\times {10}^{-18}\;{\mathrm{GeV}}^{-1}\;{{\rm{s}}}^{-1}\;{\mathrm{sr}}^{-1}\;{\mathrm{cm}}^{-2}. Under the same assumptions, an unbroken power law with index −2 is disfavored with a significance of 3.8σ (p = 0.0066%) with respect to the best fit. This significance is reduced to 2.1σ (p = 1.7%) if instead we compare the best fit to a spectrum with index −2 that has an exponential cut-off at high energies. Allowing the electron-neutrino flux to deviate from the other two flavors, we find a νe fraction of 0.18 ± 0.11 at Earth. The sole production of electron neutrinos, which would be characteristic of neutron-decay-dominated sources, is rejected with a significance of 3.6σ (p = 0.014%).
dc.description.institutionalaffiliationFil: Aartsen, M. G.. University of Adelaide; Australia
dc.description.institutionalaffiliationFil: Abraham, K.. Technische Universitat Munchen; Alemania
dc.description.institutionalaffiliationFil: Ackermann, M.. Deutsches Elektronen Synchrotron; Alemania
dc.description.institutionalaffiliationFil: Adams, J.. University Of Canterbury; Nueva Zelanda
dc.description.institutionalaffiliationFil: Aguilar, J. A.. Université Libre de Bruxelles; Bélgica
dc.description.institutionalaffiliationFil: Golup, Geraldina Tamara. Comisión Nacional de Energía Atómica. Gerencia del Area de Investigación y Aplicaciones No Nucleares. Gerencia de Física (Centro Atómico Bariloche); Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas. Centro Científico Tecnológico Conicet - Patagonia Norte; Argentina
dc.description.institutionalaffiliationFil: Wallraff, M.. Rwth Aachen University; Alemania
dc.description.institutionalaffiliationFil: Wandkowsky, N.. University of Wisconsin; Estados Unidos
dc.description.institutionalaffiliationFil: Weaver, Ch.. University of Wisconsin; Estados Unidos
dc.description.institutionalaffiliationFil: Wendt, C.. University of Wisconsin; Estados Unidos
dc.description.institutionalaffiliationFil: Westerhoff, S.. University of Wisconsin; Estados Unidos
dc.description.institutionalaffiliationFil: Whelan, B. J.. University of Adelaide; Australia
dc.description.institutionalaffiliationFil: Whitehorn, N.. University of Wisconsin; Estados Unidos
dc.description.institutionalaffiliationFil: Wichary, C.. Rwth Aachen University; Alemania
dc.description.institutionalaffiliationFil: Wiebe, K.. Johannes Gutenberg Universitat Mainz; Alemania
dc.description.institutionalaffiliationFil: Wiebusch, C. H.. Rwth Aachen University; Alemania
dc.description.institutionalaffiliationFil: Wille, L.. University of Wisconsin; Estados Unidos
dc.description.institutionalaffiliationFil: Williams, D. R.. University of Alabama at Birmingahm; Estados Unidos
dc.description.institutionalaffiliationFil: Wissing, H.. University of Maryland; Estados Unidos
dc.description.institutionalaffiliationFil: Wolf, M.. Stockholms Universitet; Suecia
dc.description.institutionalaffiliationFil: Wood, T. R.. Universidad de Ginebra; Suiza
dc.description.institutionalaffiliationFil: Woschnagg, K.. University of California; Estados Unidos
dc.description.institutionalaffiliationFil: Xu, D. L.. University of Alabama at Birmingahm; Estados Unidos
dc.description.institutionalaffiliationFil: Xu, X. W.. Chiba University; Japón
dc.description.institutionalaffiliationFil: Xu, Y.. Stony Brook University; Estados Unidos
dc.description.institutionalaffiliationFil: Yanez, J. P.. Deutsches Elektronen Synchrotron; Alemania
dc.description.institutionalaffiliationFil: Yodh, G.. South Dakota School of Mines and Technology; Estados Unidos
dc.description.institutionalaffiliationFil: Yoshida, S.. Chiba University; Japón
dc.description.institutionalaffiliationFil: Zarzhitsky, P.. University of Alabama at Birmingahm; Estados Unidos
dc.description.institutionalaffiliationFil: Zoll, M.. Stockholms Universitet; Suecia
dc.description.institutionalaffiliationFil: The IceCube Collaboration. No especifica;
dc.identifier.issn0004-637X
dc.identifier.urihttps://nuclea.cnea.gob.ar/handle/20.500.12553/7587
dc.publisherIOP Publishing
dc.relationinfo:eu-repo/semantics/reference/hdl/11336/62855
dc.relationinfo:eu-repo/semantics/altIdentifier/url/http://iopscience.iop.org/article/10.1088/0004-637X/809/1/98
dc.relationinfo:eu-repo/semantics/altIdentifier/doi/http://dx.doi.org/10.1088/0004-637X/809/1/98
dc.relationinfo:eu-repo/semantics/altIdentifier/url/https://arxiv.org/abs/1507.03991
dc.rights.licenseinfo:eu-repo/semantics/openAccess
dc.rights.licensehttps://creativecommons.org/licenses/by-nc-sa/2.5/ar/
dc.subjectNeutrinos
dc.subjectAstroparticle Physics
dc.subjectMethods: Data Analysis
dc.subjectAstronomía
dc.subjectCiencias Físicas
dc.subjectCIENCIAS NATURALES Y EXACTAS
dc.titleA combined maximum-likelihood analysis of the high-energy astrophysical neutrino flux measured with IceCube
dc.typeARTÍCULO
dc.type.versionVersión publicada

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