TL;DR
This paper systematically investigates large primordial lepton flavor asymmetries and their effects on Big Bang Nucleosynthesis, revealing complex flavor structures and implications for early universe phenomena.
Contribution
It introduces a first-principles approach to solving momentum averaged quantum kinetic equations for neutrino oscillations, uncovering detailed flavor dynamics and constraints.
Findings
Efficient flavor equilibration along specific flavor space directions.
Derived conservative bounds on primordial asymmetries from BBN constraints.
Identified conditions for strong or weak washout effects due to initial flavor asymmetries.
Abstract
Large primordial lepton flavor asymmetries with almost vanishing total baryon-minus-lepton number can evade the usual BBN and CMB constraints if neutrino oscillations lead to perfect flavor equilibration. Solving the momentum averaged quantum kinetic equations (QKEs) describing neutrino oscillations and interactions, we perform the first systematic investigation of this scenario, uncovering a rich flavor structure in stark contradiction to the assumption of simple flavor equilibration. We find (i) a particular direction in flavor space, for normal (inverted) neutrino mass hierarchy, in which the flavor equilibration is efficient and primordial asymmetries are essentially unconstrained, (ii) a minimal washout factor, yielding a conservative…
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