Spectral analysis of the high-energy IceCube neutrinos

Sergio Palomares-Ruiz, Aaron C. Vincent, and Olga Mena
Phys. Rev. D 91, 103008 – Published 28 May 2015

Abstract

A full energy and flavor-dependent analysis of the three-year high-energy IceCube neutrino events is presented. By means of multidimensional fits, we derive the current preferred values of the high-energy neutrino flavor ratios, the normalization and spectral index of the astrophysical fluxes, and the expected atmospheric background events, including a prompt component. A crucial assumption resides on the choice of the energy interval used for the analyses, which significantly biases the results. When restricting ourselves to the 30TeV3PeV energy range, which contains all the observed IceCube events, we find that the inclusion of the spectral information improves the fit to the canonical flavor composition at Earth, (111), with respect to a single-energy bin analysis. Increasing both the minimum and the maximum deposited energies has dramatic effects on the reconstructed flavor ratios as well as on the spectral index. Imposing a higher threshold of 60 TeV yields a slightly harder spectrum by allowing a larger muon neutrino component, since above this energy most atmospheric tracklike events are effectively removed. Extending the high-energy cutoff to fully cover the Glashow resonance region leads to a softer spectrum and a preference for tau neutrino dominance, as none of the expected electron (anti)neutrino induced showers have been observed so far. The lack of showers at energies above 2 PeV may point to a broken power-law neutrino spectrum. Future data may confirm or falsify whether the recently discovered high-energy neutrino fluxes and the long-standing detected cosmic rays have a common origin.

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  • Received 23 February 2015

DOI:https://doi.org/10.1103/PhysRevD.91.103008

© 2015 American Physical Society

Authors & Affiliations

Sergio Palomares-Ruiz1,*, Aaron C. Vincent2,†, and Olga Mena1,‡

  • 1Instituto de Física Corpuscular (IFIC), CSIC-Universitat de València, Apartado de Correos 22085, E-46071 Valencia, Spain
  • 2Institute for Particle Physics Phenomenology (IPPP), Department of Physics, Durham University, Durham DH1 3LE, United Kingdom

  • *sergiopr@ific.uv.es
  • aaron.vincent@durham.ac.uk
  • omena@ific.uv.es

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Vol. 91, Iss. 10 — 15 May 2015

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