Cosmology With a Very Light Gauge Boson
arXiv:1901.02010 · doi:10.1007/JHEP03(2019)071
Abstract
In this paper, we explore in detail the cosmological implications of an abelian gauge extension of the Standard Model featuring a light and weakly coupled . Such a scenario is motivated by the longstanding discrepancy between the measured and predicted values of the muon's anomalous magnetic moment, , as well as the tension between late and early time determinations of the Hubble constant. If sufficiently light, the population will decay to neutrinos, increasing the overall energy density of radiation and altering the expansion history of the early universe. We identify two distinct regions of parameter space in this model in which the Hubble tension can be significantly relaxed. The first of these is the previously identified region in which a MeV reaches equilibrium in the early universe and then decays, heating the neutrino population and delaying the process of neutrino decoupling. For a coupling of , such a particle can also explain the observed anomaly. In the second region, the is very light ( to ) and very weakly coupled ( to ). In this case, the population is produced through freeze-in, and decays to neutrinos after neutrino decoupling. Across large regions of parameter space, we predict a contribution to the energy density of radiation that can appreciably relax the reported Hubble tension, .
13 pages + 5 appendices, 10 figures. v2: Added comment to reflect that is only modified for and cropped Fig. 2 accordingly. Added comment on possible cosmological energy injection bounds. Main conclusions unchanged. Added references. v3: Matches the published version, typos fixed, references added
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