English

Primordial gravitational waves from spontaneous Lorentz symmetry breaking

Cosmology and Nongalactic Astrophysics 2025-05-23 v2 General Relativity and Quantum Cosmology High Energy Physics - Phenomenology

Abstract

We study the effect of Spontaneous Lorentz Symmetry Breaking (SLSB) on Primordial Gravitational Waves (PGWs) generated during inflation. The SLSB is induced by a time-like Bumblebee vector field which is non-minimally coupled to the Ricci tensor in the Friedmann-Lema\^itre-Robertson-Walker background. The power spectrum and GW amplitude are computed to investigate how Lorentz violation leaves observable imprints. We calculate the GW strain amplitude over frequencies (1010 Hz,104 Hz)(10^{-10}~\mathrm{Hz}, 10^4~\mathrm{Hz}), for a range of the dimensionless Lorentz-violating parameter, 103l104 -10^{-3} \leq l \leq 10^{-4} , which essentially comes from a slight sensitivity to the equation of state for dark energy. For positive l l values, the amplitude of GW shows a mild suppression compared to the standard cosmological scenario (l=0)( l = 0) . This effect could be observable with detectors like SKA, μ\mu-Ares, and BBO. Conversely, negative l l values amplify the GW amplitude, enhancing detectability by both SKA, μ\mu-Ares, and BBO, as well as by THEIA and DECIGO. Notably, the GW strain amplitude increases by an order of magnitude as l l moves from 0 to 103 -10^{-3} , improving prospects for detection in high-sensitivity detectors like THEIA and DECIGO.

Keywords

Cite

@article{arxiv.2501.14395,
  title  = {Primordial gravitational waves from spontaneous Lorentz symmetry breaking},
  author = {Mohsen Khodadi and Gaetano Lambiase and Leonardo Mastrototaro and Tanmay Kumar Poddar},
  journal= {arXiv preprint arXiv:2501.14395},
  year   = {2025}
}

Comments

10 pages, 02 figures, double column, accepted in Physics Letters B