Litcius/Paper detail

Profiling cold new early dark energy

Juan S. Cruz, Steen Hannestad, Emil Brinch Holm, Florian Niedermann, Martin S. Sloth, Thomas Tram

2023Physical review. D/Physical review. D.29 citationsDOIOpen Access PDF

Abstract

Recent interest in new early dark energy (NEDE), a cosmological model with a vacuum energy component decaying in a triggered phase transition around recombination, has been sparked by its impact on the Hubble tension. Previous constraints on the model parameters were derived in a Bayesian framework with Markov-chain Monte Carlo (MCMC) methods. In this work, we instead perform a frequentist analysis using the profile likelihood in order to assess the impact of prior volume effects on the constraints. We constrain the maximal fraction of NEDE ${f}_{\mathrm{NEDE}}$, finding ${f}_{\mathrm{NEDE}}=0.07{6}_{\ensuremath{-}0.035}^{+0.040}$ at 68% CL with our baseline dataset and similar constraints using either data from SPT-3G, ACT or full-shape large-scale structure, showing a preference over $\mathrm{\ensuremath{\Lambda}}\mathrm{CDM}$ even in the absence of a SH0ES prior on ${H}_{0}$. While this is stronger evidence for NEDE than obtained with the corresponding Bayesian analysis, our constraints broadly match those obtained by fixing the NEDE trigger mass. Including the SH0ES prior on ${H}_{0}$, we obtain ${f}_{\mathrm{NEDE}}=0.13{6}_{\ensuremath{-}0.026}^{+0.024}$ at 68% CL. Furthermore, we compare NEDE with the early dark energy (EDE) model, finding similar constraints on the maximal energy density fractions and ${H}_{0}$ in the two models. At 68% CL in the NEDE model, we find ${H}_{0}=69.5{6}_{\ensuremath{-}1.29}^{+1.16}\text{ }\text{ }\mathrm{km}\text{ }{\mathrm{s}}^{\ensuremath{-}1}\text{ }{\mathrm{Mpc}}^{\ensuremath{-}1}$ with our baseline and ${H}_{0}=71.6{2}_{\ensuremath{-}0.76}^{+0.78}\text{ }\text{ }\mathrm{km}\text{ }{\mathrm{s}}^{\ensuremath{-}1}\text{ }{\mathrm{Mpc}}^{\ensuremath{-}1}$ when including the SH0ES measurement of ${H}_{0}$, thus corroborating previous conclusions that the NEDE model provides a considerable alleviation of the ${H}_{0}$ tension.

Topics & Concepts

Profiling (computer programming)Dark energyComputer scienceAstrophysicsPhysicsOperating systemCosmologyCosmology and Gravitation TheoriesDark Matter and Cosmic PhenomenaBlack Holes and Theoretical Physics