Lorentz Invariance Violation and IceCube Neutrino Events
arXiv:1507.03193
Abstract
The IceCube neutrino spectrum shows a flux which falls of as for sub PeV energies but there are no neutrino events observed above PeV. In particular the Glashow resonance expected at 6.3 PeV is not seen. We examine a Planck scale Lorentz violation as a mechanism for explaining the cutoff of observed neutrino energies around a few PeV. By choosing the one free parameter the cutoff in neutrino energy can be chosen to be between 2 and 6.3 PeV. We assume that neutrinos (antineutrinos) have a dispersion relation , and find that both and decays are suppressed at neutrino energies of order of few PeV. We find that the decay being a two-neutrino process is enhanced, whereas decay is suppressed. The is also suppressed with a cutoff neutrino energy of same order of magnitude, whereas is enhanced. The decay is suppressed (while the is enhanced). This means that the expected from decay arising from reaction will not be seen. This can explain the lack of Glashow resonance events at IceCube. If no Glashow resonance events are seen in the future then the Lorentz violation can be a viable explanation for the IceCube observations at PeV energies.
v2, 16 pages, Version accepted for publication in JHEP
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