English

The resilience of the Etherington-Hubble relation

Cosmology and Nongalactic Astrophysics 2022-05-19 v2

Abstract

The Etherington reciprocity theorem, or distance duality relation (DDR), relates the mutual scaling of cosmic distances in any metric theory of gravity where photons are massless and propagate on null geodesics. In this paper, we make use of the DDR to build a consistency check based on its degeneracy with the Hubble constant, H0H_0. We parameterise the DDR using the form η(z)=1+ϵz\eta(z) = 1+ \epsilon z, thus only allowing small deviations from its standard value. We use a combination of late time observational data to provide the first joint constraints on the Hubble parameter and ϵ\epsilon with percentage accuracy: H0=68.6±2.5H_0 = 68.6 \pm 2.5 kms1^{-1}Mpc1^{-1} and ϵ=0.0010.026+0.023\epsilon = 0.001^{+0.023}_{-0.026}. We build our consistency check using these constraints and compare them with the results obtained in extended cosmological models using cosmic microwave background data. We find that extensions to Λ\LambdaCDM involving massive neutrinos and/or additional dark radiation are in perfect agreement with the DDR, while models with non-zero spatial curvature show a preference for DDR violation, i.e., ϵ0\epsilon \ne 0 at the level of 1.5σ\sim 1.5 \sigma. Most importantly, we find a mild 2σ\sigma discrepancy between the validity of the DDR and the latest publicly available Cepheid-calibrated SNIa constraint on H0H_0. We discuss the potential consequences of this for both the Etherington reciprocity theorem and the H0H_0 tension.

Keywords

Cite

@article{arxiv.2112.05701,
  title  = {The resilience of the Etherington-Hubble relation},
  author = {Fabrizio Renzi and Natalie B. Hogg and William Giarè},
  journal= {arXiv preprint arXiv:2112.05701},
  year   = {2022}
}

Comments

10 pages, 3 figures. Updated to match MNARS published version