Two Puzzles, One Solution: Neutrino Mass and Secluded Dark Matter
Abstract
We present a minimal secluded dark-matter (DM) framework based on an extra gauge symmetry. The model contains a Dirac DM particle , three heavy neutrinos with masses , and a singlet scalar that mixes with the Standard Model Higgs doublet by an angle . A symmetry forbids the - portal at tree level; the leading portal then arises at one loop from the same Yukawa structures that generate active neutrino masses , implying , where and are the SM Higgs VEV and mass. For heavy-neutrino masses in the multi-TeV range, this yields a naturally tiny mixing, , which strongly suppresses DM signals in direct, indirect, and collider searches. For PeV-scale heavy neutrinos the DM-nucleon cross section can instead enter the reach of direct-detection experiments. The visible and dark sectors thermalize at temperatures of order a few times the mass of the lightest heavy neutrino, then subsequently decouple, and typically evolve with a slightly hotter dark bath. In the secluded regime, with and , the relic density is set by -wave annihilation (with the Higgs-like particle of the dark sector), and the dark-sector Yukawa couplings required to reproduce the observed abundance are , as in the standard WIMP case. For heavy-neutrino masses , the mediator decays before nucleosynthesis without spoiling BBN observables, while the tiny portal suppresses present-day signals below current and near-future sensitivities. This links two long-standing puzzles, the absence of DM signals and the smallness of neutrino masses, within a predictive thermal framework.
Cite
@article{arxiv.2511.19622,
title = {Two Puzzles, One Solution: Neutrino Mass and Secluded Dark Matter},
author = {Mattia Di Mauro},
journal= {arXiv preprint arXiv:2511.19622},
year = {2025}
}
Comments
6 pages and 2 figures, with additional material in the appendices. Comments are welcome!