English

Probing New Physics with Underground Accelerators and Radioactive Sources

High Energy Physics - Phenomenology 2014-12-02 v1 High Energy Physics - Experiment Nuclear Experiment

Abstract

New light, weakly coupled particles can be efficiently produced at existing and future high-intensity accelerators and radioactive sources in deep underground laboratories. Once produced, these particles can scatter or decay in large neutrino detectors (e.g Super-K and Borexino) housed in the same facilities. We discuss the production of weakly coupled scalars ϕ\phi via nuclear de-excitation of an excited element into the ground state in two viable concrete reactions: the decay of the 0+0^+ excited state of 16^{16}O populated via a (p,α)(p,\alpha) reaction on fluorine and from radioactive 144^{144}Ce decay where the scalar is produced in the de-excitation of 144^{144}Nd^*, which occurs along the decay chain. Subsequent scattering on electrons, e(ϕ,γ)ee(\phi,\gamma)e, yields a mono-energetic signal that is observable in neutrino detectors. We show that this proposed experimental set-up can cover new territory for masses 250keVmϕ2me250\, {\rm keV}\leq m_\phi \leq 2 m_e and couplings to protons and electrons, 1011<gegp<10710^{-11} < g_e g_p < 10^{-7}. This parameter space is motivated by explanations of the "proton charge radius puzzle", thus this strategy adds a viable new physics component to the neutrino and nuclear astrophysics programs at underground facilities.

Keywords

Cite

@article{arxiv.1405.4864,
  title  = {Probing New Physics with Underground Accelerators and Radioactive Sources},
  author = {Eder Izaguirre and Gordan Krnjaic and Maxim Pospelov},
  journal= {arXiv preprint arXiv:1405.4864},
  year   = {2014}
}

Comments

5 pages, 2 figures

R2 v1 2026-06-22T04:18:18.784Z