Invisible decay of solar neutrinos at dark matter experiments
Abstract
The combination of the long baseline and characteristic energies of solar neutrinos offers an ideal framework to probe invisible neutrino decay. In this work we present the first constraint on invisible solar-neutrino decay using coherent elastic neutrino-nucleus scattering, recently observed in dark matter direct detection experiments. Through a combined analysis of nuclear-recoil data from XENONnT, PandaX-4T, and LUX-ZEPLIN, we constrain the lifetime of the neutrino mass state , obtaining a bound already comparable in strength to that from the Sudbury Neutrino Observatory. We further evaluate the sensitivity that could be reached by a future xenon-based dark matter detector. For this projection, we extend the analysis to electronic-recoil data, estimating the impact of detecting lower-energy solar neutrinos from the -chain via elastic scattering off electrons. This channel would allow us to place strong constraints on the lifetimes of both the and mass eigenstates. Our results show that, with nominal future exposures, nuclear-recoil data would improve the current bound by about one order of magnitude, while electronic-recoil data would open a new detection channel for low-energy solar neutrinos, surpassing existing dedicated solar-neutrino bounds by 1 to 2 orders of magnitude.
Keywords
Cite
@article{arxiv.2607.24584,
title = {Invisible decay of solar neutrinos at dark matter experiments},
author = {Martina Beccaria and Veronica Beligotti and Valentina De Romeri and Giulia Pagliaroli and Dimitrios K. Papoulias and Federica Pompa and Christoph A. Ternes},
journal= {arXiv preprint arXiv:2607.24584},
year = {2026}
}
Comments
17 pages, 1 table, 6 figures