The interpretation of the atmospheric neutrino data and cosmological constraints
arXiv:hep-ph/9907548 · doi:10.1142/S0217751X00000951
Abstract
The data on atmospheric neutrinos can be explained assuming the existence of oscillations between muon neutrinos and light sterile neutrinos with mixing close to maximal, and Delta_m^2 approximately equal to 3 E-3 (eV^2). This interpretation of the data is in potential conflict with the successes of big bang nucleosynthesis (BBN), since oscillations can result in a too large contribution of the sterile state to the energy density of the universe at the epoch of nucleosynthesis. The possibility to evade these cosmological constraints has been recently the object of some controversy. In this work we rediscuss this problem and find that the inclusion of a small mixing of the sterile state with tau neutrino can result in the generation of a large lepton asymmetry that strongly suppress the muon-sterile neutrino oscillations eliminating the possible conflict with BBN bounds. In this scheme the mass of the tau neutrino must be larger than few eV's and is compatible with cosmological bounds. Our calculation is performed using a Pauli-Boltzmann method. In this approach it is also possible to develop analytic calculations that allow physical insight in the processes considered and give support to the numerical results.
45 pages, 14 figures, LaTeX2e; added discussion in subsection 6.3; to appear in International Journal of Modern Physics A
References in corpus (2)
Cited by in corpus (21)
- Sterile Neutrino Hot, Warm, and Cold Dark Matter
- The Phenomenology of Right Handed Neutrinos
- Sterile neutrinos, lepton asymmetries, primordial elements: how much of each?
- Light sterile neutrino production in the early universe with dynamical neutrino asymmetries
- Update on neutrino mixing in the early Universe
- Additional Light Sterile Neutrinos and Cosmology
- The problem of the initial conditions in flavoured leptogenesis and the tauon N_2-dominated scenario
- Neutrino Propagation in Dense Astrophysical Systems
- Dark Radiation or Warm Dark Matter from long lived particle decays in the light of Planck
- Introduction to sterile neutrinos
- Probing relic neutrino decays with 21 cm cosmology
- Thermalizing sterile neutrino dark matter
- Further studies on relic neutrino asymmetry generation I: the adiabatic Boltzmann limit, non-adiabatic evolution, and the classical harmonic oscillator analogue of the quantum kinetic equations
- Blocking Active-Sterile Neutrino Oscillations in the Early Universe with a Majoron Field
- Active-Sterile neutrino oscillations and BBN+CMBR constraints
- Active-sterile neutrino oscillations in the early Universe: asymmetry generation at low |delta m^2| and the Landau-Zener approximation
- Neutrino oscillations in the early universe. Resonant case
- Comment on ``Neutrino oscillations in the early universe: how can large lepton asymmetry be generated?"
- Maximal oscillations, the see-saw mechanism and the Exact Parity Model
- Lepton asymmetries from neutrino oscillations
- How many new particles do we need after the Higgs boson?