English

$pp$ Solar Neutrinos at DARWIN

High Energy Physics - Phenomenology 2022-11-30 v1

Abstract

The DARWIN collaboration recently argued that DARWIN (DARk matter WImp search with liquid xenoN) can collect, via neutrino--electron scattering, a large, useful sample of solar pppp-neutrinos, and measure their survival probability with sub-percent precision. We explore the physics potential of such a sample in more detail. We estimate that, with 300 ton-years of data, DARWIN can also measure, with the help of current solar neutrino data, the value of sin2θ13\sin^2\theta_{13}, with the potential to exclude sin2θ13=0\sin^2\theta_{13}=0 close to the three-sigma level. We explore in some detail how well DARWIN can constrain the existence of a new neutrino mass-eigenstate ν4\nu_4 that is quasi-mass-degenerate with ν1\nu_1 and find that DARWIN's sensitivity supersedes that of all current and near-future searches for new, very light neutrinos. In particular, DARWIN can test the hypothesis that ν1\nu_1 is a pseudo-Dirac fermion as long as the induced mass-squared difference is larger than 101310^{-13} eV2^2, one order of magnitude more sensitive than existing constraints. Throughout, we allowed for the hypotheses that DARWIN is filled with natural xenon or 136^{136}Xe-depleted xenon.

Keywords

Cite

@article{arxiv.2111.02421,
  title  = {$pp$ Solar Neutrinos at DARWIN},
  author = {André de Gouvêa and Emma McGinness and Ivan Martinez-Soler and Yuber F. Perez-Gonzalez},
  journal= {arXiv preprint arXiv:2111.02421},
  year   = {2022}
}

Comments

14 pages, 7 figures

R2 v1 2026-06-24T07:24:58.077Z