Constraints on the lepton asymmetry and radiation energy density: Implications for PLANCK
Lucia Aurelia Popa, Ana Vasile

TL;DR
This paper uses current cosmological data to constrain neutrino properties and lepton asymmetry, and forecasts how future Planck data will improve these constraints, impacting our understanding of early universe physics.
Contribution
It provides updated bounds on neutrino degeneracy and radiation energy density using recent data, and predicts future Planck measurements will refine these constraints significantly.
Findings
Neutrino degeneracy parameter _{ u} 0.722 at 2-7
Effective number of relativistic neutrino species N^{eff} 3.058 with uncertainties
Primordial helium abundance Y_p 0.249 with 2-7 errors
Abstract
By using most of the present CMB and LSS measurements and the BBN constraints on the primordial helium abundance, Y_p, we set bounds on the radiation content of the Universe and neutrino properties. We consider lepton asymmetric cosmological models parametrized by the neutrino degeneracy parameter \xi_{\nu} and the variation of the relativistic degrees of freedom, \Delta N_{oth}^{eff}, due to possible other physical processes that occurred between BBN and structure formation epoch. We found that present CMB and LSS data constraints the neutrino degeneracy parameter at \xi_{\nu} \leq 0.722, implying a lepton asymmetry of the neutrino background {\cal L}_{\nu} \leq 0.614 (2-\sigma). We also found \Delta N^{eff}_{oth}=0.572^{+1.972}_{-1.780}, the contribution to the effective number of relativistic neutrino species N^{eff}=3.058^{+1.971}_{-1.178} and a primordial helium abundance…
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Taxonomy
TopicsCosmology and Gravitation Theories · Dark Matter and Cosmic Phenomena · Particle physics theoretical and experimental studies
