How to relax the cosmological neutrino mass bound

We study the impact of non-standard momentum distributions of cosmic neutrinos on the anisotropy spectrum of the cosmic microwave background and the matter power spectrum of the large scale structure. We show that the neutrino distribution has almost no unique observable imprint, as it is almost ent...

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Veröffentlicht in:Journal of cosmology and astroparticle physics 2019-04, Vol.2019 (4), p.49-49
Hauptverfasser: Oldengott, Isabel M., Barenboim, Gabriela, Kahlen, Sarah, Salvado, Jordi, Schwarz, Dominik J.
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container_end_page 49
container_issue 4
container_start_page 49
container_title Journal of cosmology and astroparticle physics
container_volume 2019
creator Oldengott, Isabel M.
Barenboim, Gabriela
Kahlen, Sarah
Salvado, Jordi
Schwarz, Dominik J.
description We study the impact of non-standard momentum distributions of cosmic neutrinos on the anisotropy spectrum of the cosmic microwave background and the matter power spectrum of the large scale structure. We show that the neutrino distribution has almost no unique observable imprint, as it is almost entirely degenerate with the effective number of neutrino flavours, Neff, and the neutrino mass, mν. Performing a Markov chain Monte Carlo analysis with current cosmological data, we demonstrate that the neutrino mass bound heavily depends on the assumed momentum distribution of relic neutrinos. The message of this work is simple and has to our knowledge not been pointed out clearly before: cosmology allows that neutrinos have larger masses if their average momentum is larger than that of a perfectly thermal distribution. Here we provide an example in which the mass limits are relaxed by a factor of two.
doi_str_mv 10.1088/1475-7516/2019/04/049
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subjects Anisotropy
Big Bang theory
Cosmic microwave background
Cosmology
Flavors
Large scale structure of the universe
Markov analysis
Markov chains
Momentum
Monte Carlo simulation
Neutrinos
title How to relax the cosmological neutrino mass bound
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