Neutrino Quantum Kinetics in the Early Universe

ORAL

Abstract

Neutrinos decouple from the plasma at a temperature scale of 1 MeV in the early universe. The decoupling is an out-of-equilibrium process and requires the solution of the Quantum Kinetic Equations (QKEs) in a homogeneous and isotropic geometry. We present results from our code BURST on solving the complete set of QKEs relevant for neutrino energy transport. By using generalized density matrices, we follow the non-degenerate spectra of electron, muon, and tau flavor neutrinos. In addition, we are able to show how the coherence between the flavor states manifests itself in the off-diagonal elements of the density matrices. Our results have implications for both the primordial abundances predicted from big bang nucleosynthesis and neutrino observables in the cosmic microwave background.

*National Science Foundation, Grant No. PHY-1630782 Heising-Simons Foundation, Grant 2017-228 Los Alamos National Laboratory Institutional Computing Program, U.S Department of Energy National Nuclear Security Administration Award No. DE-AC52-06NA25396 Los Alamos National Laboratory Center for Earth and Space Sciences, Laboratory Directed Research and Development project No. 20180475DR

Presenters

  • Evan Grohs

    • Univ of California - Berkeley

Authors

  • Evan Grohs

    • Univ of California - Berkeley
  • Vincenzo Cirigliano

    • Los Alamos National Laboratory
  • George M Fuller

    • Univ of California - San Diego
  • Mark W Paris

    • Los Alamos Natl Lab
  • Shashank Shalgar

    • Los Alamos National Laboratory