English

Testing decay of astrophysical neutrinos with incomplete information

High Energy Astrophysical Phenomena 2017-03-29 v2

Abstract

Neutrinos mix and have mass differences, so decays from one to another must occur. But how fast? The best direct limits on non-radiative decays, based on solar and atmospheric neutrinos, are weak, τ103\tau \gtrsim 10^{-3} s (mm/eV) or much worse. Greatly improved sensitivity, τ103\tau \sim 10^3 s (mm/eV), will eventually be obtained using neutrinos from distant astrophysical sources, but large uncertainties --- in neutrino properties, source properties, and detection aspects --- do not allow this yet. However, there is a way forward now. We show that IceCube diffuse neutrino measurements, supplemented by improvements expected in the near term, can increase sensitivity to τ10\tau \sim 10 s (mm/eV) for all neutrino mass eigenstates. We provide a roadmap for the necessary analyses and show how to manage the many uncertainties. If limits are set, this would definitively rule out the long-considered possibility that neutrino decay affects solar, atmospheric, or terrestrial neutrino experiments.

Keywords

Cite

@article{arxiv.1610.02096,
  title  = {Testing decay of astrophysical neutrinos with incomplete information},
  author = {Mauricio Bustamante and John F. Beacom and Kohta Murase},
  journal= {arXiv preprint arXiv:1610.02096},
  year   = {2017}
}

Comments

11 pages main text, 10 figures, plus technical appendices; improved discussion, improved treatment of nu_tau-initiated showers