English

$f(Q)$-gravity and neutrino physics

Cosmology and Nongalactic Astrophysics 2023-07-12 v1 General Relativity and Quantum Cosmology

Abstract

Within the f(Q)f(Q)-gravity framework we perform a phenomenological study of the cosmological observables in light of the degeneracy between neutrinos physics and the modified gravity parameter and we identify specific patterns which allow to break such degeneracy. We also provide separately constraints on the total mass of the neutrinos, Σmν\Sigma m_{\nu}, and on the effective number of neutrino species, NeffN_{\rm eff}, using cosmic microwave background (CMB), baryon acoustic oscillation (BAO), redshift space distortion (RSD), supernovae (SNIa), galaxy clustering (GC) and weak gravitational lensing (WL) measurements. The strongest upper bound on the total mass of the neutrinos is found for the combination of CMB+BAO+RSD+SNIa and it is Σmν<0.277\Sigma m_\nu<0.277 eV at 95\% C.L. For the same combination of data we find Neff=2.930.34+0.31N_{\rm eff}=2.93^{+0.31}_{-0.34} at 95\% C.L. We also find that all combinations of data we consider, prefer a stronger gravitational interaction than Λ\LambdaCDM. Finally, we consider the χ2\chi^2 and deviance information criterion statistics and find the f(Q)+Σmνf(Q)+\Sigma m_\nu model to be statistically supported by data over the standard scenario. On the contrary f(Q)+Nefff(Q)+N_{\rm eff} is supported by CMB+BAO+RSD+SNIa but a moderate evidence against it is found with GC and WL data.

Keywords

Cite

@article{arxiv.2306.03015,
  title  = {$f(Q)$-gravity and neutrino physics},
  author = {Luís Atayde and Noemi Frusciante},
  journal= {arXiv preprint arXiv:2306.03015},
  year   = {2023}
}

Comments

11 pages; 5 figures; 4 tables, accepted for publication in PRD

R2 v1 2026-06-28T10:56:51.700Z