English

Gravitational footprints of massive neutrinos and lepton number breaking

High Energy Physics - Phenomenology 2020-07-01 v2 Cosmology and Nongalactic Astrophysics General Relativity and Quantum Cosmology High Energy Physics - Experiment High Energy Physics - Theory

Abstract

We investigate the production of primordial Gravitational Waves (GWs) arising from First Order Phase Transitions (FOPTs) associated to neutrino mass generation in the context of type-I and inverse seesaw schemes. We examine both "high-scale" as well as "low-scale" variants, with either explicit or spontaneously broken lepton number symmetry U(1)LU(1)_L in the neutrino sector. In the latter case, a pseudo-Goldstone majoron-like boson may provide a candidate for cosmological dark matter. We find that schemes with softly-broken U(1)LU(1)_L and with single Higgs-doublet scalar sector lead to either no FOPTs or too weak FOPTs, precluding the detectability of GWs in present or near future measurements. Nevertheless, we found that, in the majoron-like seesaw scheme with spontaneously broken U(1)LU(1)_L at finite temperatures, one can have strong FOPTs and non-trivial primordial GW spectra which can fall well within the frequency and amplitude sensitivity of upcoming experiments, including LISA, BBO and u-DECIGO. However, GWs observability clashes with invisible Higgs decay constraints from the LHC. A simple and consistent fix is to assume the majoron-like mass to lie above the Higgs-decay kinematical threshold. We also found that the majoron-like variant of the low-scale seesaw mechanism implies a different GW spectrum than the one expected in the high-scale seesaw. This feature will be testable in future experiments. Our analysis shows that GWs can provide a new and complementary portal to test the neutrino mass generation mechanism.

Keywords

Cite

@article{arxiv.1909.09740,
  title  = {Gravitational footprints of massive neutrinos and lepton number breaking},
  author = {Andrea Addazi and Antonino Marcianò and António P. Morais and Roman Pasechnik and Rahul Srivastava and José W. F. Valle},
  journal= {arXiv preprint arXiv:1909.09740},
  year   = {2020}
}

Comments

11 pages, 5 figures, 4 tables; invisible Higgs decay constraint incorporated; discussion extended; references added