Constraints on the sum of the neutrino masses in dynamical dark energy models with are tighter than those obtained in CDM
arXiv:1801.08553 · doi:10.1103/PhysRevD.98.083501
Abstract
We explore cosmological constraints on the sum of the three active neutrino masses in the context of dynamical dark energy (DDE) models with equation of state (EoS) parametrized as a function of redshift by , and satisfying for all . We perform a Bayesian analysis and show that, within these models, the bounds on \textit{do not degrade} with respect to those obtained in the CDM case; in fact the bounds are slightly tighter, despite the enlarged parameter space. We explain our results based on the observation that, for fixed choices of such that (but not for all ), the upper limit on is tighter than the CDM limit because of the well-known degeneracy between and . The Bayesian analysis we have carried out then integrates over the possible values of - such that , all of which correspond to tighter limits on than the CDM limit. We find a 95\% confidence level (C.L.) upper bound of . This bound can be compared with at 95\%~C.L., obtained within the CDM model, and at 95\%~C.L., obtained in a DDE model with arbitrary EoS (which allows values of ). Contrary to the results derived for DDE models with arbitrary EoS, we find that a dark energy component with is unable to alleviate the tension between high-redshift observables and direct measurements of the Hubble constant . Finally, in light of the results of this analysis, we also discuss the implications for DDE models of a possible determination of the neutrino mass hierarchy by laboratory searches. (abstract abridged)
20 pages, 6 figures, added substantial discussion in text and Appendix A showing that including information from neutrino oscillations does not impact our results, accepted for publication in Phys. Rev. D. The busy reader who wants to see the main results should look at Table 1, Figure 1, and Figure 4
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