English

Axionlike particles searches in reactor experiments

High Energy Physics - Phenomenology 2020-11-05 v2 High Energy Physics - Experiment Nuclear Experiment

Abstract

Reactor neutrino experiments provide a rich environment for the study of axionlike particles (ALPs). Using the intense photon flux produced in the nuclear reactor core, these experiments have the potential to probe ALPs with masses below 10 MeV. We explore the feasibility of these searches by considering ALPs produced through Primakoff and Compton-like processes as well as nuclear transitions. These particles can subsequently interact with the material of a nearby detector via inverse Primakoff and inverse Compton-like scatterings, via axio-electric absorption, or they can decay into photon or electron-positron pairs. We demonstrate that reactor-based neutrino experiments have a high potential to test ALP-photon couplings and masses, currently probed only by cosmological and astrophysical observations, thus providing complementary laboratory-based searches. We furthermore show how reactor facilities will be able to test previously unexplored regions in the \simMeV ALP mass range and ALP-electron couplings of the order of gaee108g_{aee} \sim 10^{-8} as well as ALP-nucleon couplings of the order of gann(1)109g_{ann}^{(1)} \sim 10^{-9}, testing regions beyond TEXONO and Borexino limits.

Keywords

Cite

@article{arxiv.2010.15712,
  title  = {Axionlike particles searches in reactor experiments},
  author = {D. Aristizabal Sierra and V. De Romeri and L. J. Flores and D. K. Papoulias},
  journal= {arXiv preprint arXiv:2010.15712},
  year   = {2020}
}

Comments

40 pages, 13 figures, 4 tables. SN1987A and Globular Cluster stars limits updated, references added

R2 v1 2026-06-23T19:45:02.802Z