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paper

Monochromatic neutrinos generated by dark matter and the see-saw mechanism

arXiv:1412.3459 · doi:10.1103/PhysRevD.91.075001

Abstract

We study a minimal extension of the Standard Model where a scalar field is coupled to the right handed neutrino responsible for the see-saw mechanism for neutrino masses. In the absence of other couplings, below 8 TeV the scalar $A$ has a unique decay mode $A \rightarrow νν$, $ν$ being the physical observed light neutrino state. Above 8 (11) TeV, the 3-body (4-body) decay modes dominate. Imposing constraints on neutrino masses $m_ν$ from atmospheric and solar experiments implies a long lifetime for $A$, much larger than the age of the Universe, making it a natural dark matter candidate. Its lifetime can be as large as $10^{29}$ seconds, and its signature below 8 TeV would be a clear monochromatic neutrino signal, which can be observed by ANTARES or IceCube. Under certain conditions, the scalar $A$ may be viewed as a Goldstone mode of a complex scalar field whose vacuum expectation value generates the Majorana mass for $ν_R$. In this case, we expect the dark matter scalar to have a mass $\lesssim 10$ GeV.

7 pages, 4 figures, version accepted for publication in PRD [references and 3/4- body decay added in the analysis for completeness]