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Differential limit on the extremely-high-energy cosmic neutrino flux in the presence of astrophysical background from nine years of IceCube data

  • (IceCube Collaboration)
  • University of Canterbury
  • Deutsches Elektronen-Synchrotron (DESY)
  • Université Libre de Bruxelles
  • Niels Bohr Institutet
  • Oskar Klein Centre
  • University of Geneva
  • Friedrich-Alexander Universitat Erlangen-Nurnberg (FAU)
  • Marquette University
  • Eberly College of Science
  • Massachusetts Institute of Technology
  • RWTH Aachen University
  • South Dakota School of Mines and Technology
  • University of Alberta
  • University of California, Irvine
  • Johannes Gutenberg University
  • University of California at Berkeley
  • Ohio State University
  • Max-Planck-lnstitut für Kohlenforschung
  • Bergische Universität Wuppertal
  • University of Rochester
  • University of Maryland, College Park
  • University of Kansas
  • Lawrence Berkeley National Laboratory
  • pro3dure medical GmbH
  • Uppsala University
  • University of Wisconsin
  • SNOLAB
  • University of Münster
  • VUB Neurology
  • The Pennsylvania State University
  • Georgia Institute of Technology
  • Michigan State University
  • University of Delaware
  • Ghent University
  • Humboldt-Universität zu Berlin
  • Sungkyunkwan University
  • Southern University and A&M College
  • University of Wisconsin-Madison
  • Technical University of Munich
  • University of Adelaide
  • University of Tokyo
  • Chiba-U
  • Clark-Atlanta University
  • University of Texas at Arlington
  • SUNY
  • University of Alabama
  • Drexel University
  • University of Wisconsin-River Falls
  • Yale University
  • University of Alaska Anchorage
  • University of Oxford
  • University of California at Los Angeles

Research output: Contribution to journalArticlepeer-review

246 Scopus citations

Abstract

We report a quasidifferential upper limit on the extremely-high-energy (EHE) neutrino flux above 5×106 GeV based on an analysis of nine years of IceCube data. The astrophysical neutrino flux measured by IceCube extends to PeV energies, and it is a background flux when searching for an independent signal flux at higher energies, such as the cosmogenic neutrino signal. We have developed a new method to place robust limits on the EHE neutrino flux in the presence of an astrophysical background, whose spectrum has yet to be understood with high precision at PeV energies. A distinct event with a deposited energy above 106 GeV was found in the new two-year sample, in addition to the one event previously found in the seven-year EHE neutrino search. These two events represent a neutrino flux that is incompatible with predictions for a cosmogenic neutrino flux and are considered to be an astrophysical background in the current study. The obtained limit is the most stringent to date in the energy range between 5×106 and 2×1010 GeV. This result constrains neutrino models predicting a three-flavor neutrino flux of Eν2φνe+νμ+ντ≃2×10-8 GeV/cm2 sec sr at 109 GeV. A significant part of the parameter space for EHE neutrino production scenarios assuming a proton-dominated composition of ultra-high-energy cosmic rays is disfavored independently of uncertain models of the extragalactic background light which previous IceCube constraints partially relied on.

Original languageEnglish
Article number062003
JournalPhysical Review D
Volume98
Issue number6
DOIs
StatePublished - 12 Sep 2018

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