English

Neutrinos from stars in the Milky Way

Solar and Stellar Astrophysics 2026-01-08 v2 High Energy Astrophysical Phenomena High Energy Physics - Experiment High Energy Physics - Phenomenology

Abstract

Neutrinos are produced during stellar evolution by means of thermal and thermonuclear processes. We model the cumulative neutrino flux expected at Earth from all stars in the Milky Way: the Galactic stellar neutrino flux (GSν\nuF). We account for the star formation history of our Galaxy and reconstruct the spatial distribution of Galactic stars by means of a random sampling procedure based on Gaia Data Release 2. We use the stellar evolution code MESA\texttt{MESA} to compute the neutrino emission for a suite of stellar models with solar metallicity and zero-age-main-sequence mass between 0.08M0.08M_\odot and 100 M100\ M_\odot, from their pre-main sequence phase to their final fates. We then reconstruct the evolution of the neutrino spectral energy distribution for each stellar model in our suite. The GSν\nuF lies between O(1)\mathcal{O}(1) keV and O(10)\mathcal{O}(10) MeV, with thermal (thermonuclear) processes responsible for shaping neutrino emission at energies smaller (larger) than 0.10.1 MeV. Stars with mass larger than O(1 M)\mathcal{O}(1\ M_\odot), located in the thin disk of the Galaxy, provide the largest contribution to the GSν\nuF. Moreover, most of the GSν\nuF originates from stars distant from Earth about 5105-10 kpc, implying that a large fraction of stellar neutrinos can reach us from the Galactic Center. Solar neutrinos and the diffuse supernova neutrino background have energies comparable to those of the GSν\nuF, challenging the detection of the latter. However, directional information of solar neutrino and GSν\nuF events, together with the annual modulation of the solar neutrino flux, could facilitate the GSν\nuF detection; this will kick off a new era for low-energy neutrino astronomy, also providing a novel probe to discover New Physics.

Keywords

Cite

@article{arxiv.2510.07399,
  title  = {Neutrinos from stars in the Milky Way},
  author = {Pablo Martínez-Miravé and Irene Tamborra},
  journal= {arXiv preprint arXiv:2510.07399},
  year   = {2026}
}

Comments

16 pages, 6 figures, 3 tables. It matches the version accepted for publication in Phys.Rev.D. Selected as Editors' Suggestion