English

Neutrino Masses in Astroparticle Physics

Astrophysics 2009-11-07 v2

Abstract

The case for small neutrino mass differences from atmospheric and solar neutrino oscillation experiments has become compelling, but leaves the overall neutrino mass scale m_nu undetermined. The most restrictive limit of m_nu < 0.8 eV arises from the 2dF galaxy redshift survey in conjunction with the standard theory of cosmological structure formation. A relation between the hot dark matter fraction and m_nu depends on the cosmic number density n_nu of neutrinos. If solar neutrino oscillations indeed correspond to the favored large mixing angle MSW solution, then big-bang nucleosynthesis gives us a restrictive limit on all neutrino chemical potentials, removing the previous uncertainty of n_nu. Therefore, a possible future measurement of m_nu will directly establish the cosmic neutrino mass fraction Omega_nu. Cosmological neutrinos with sub-eV masses can play an interesting role for producing the highest-energy cosmic rays (Z-burst scenario). Sub-eV masses also relate naturally to leptogenesis scenarios of the cosmic baryon asymmetry. Unfortunately, the time-of-flight dispersion of a galactic or local-group supernova neutrino burst is not sensitive in the sub-eV range.

Keywords

Cite

@article{arxiv.astro-ph/0207220,
  title  = {Neutrino Masses in Astroparticle Physics},
  author = {G. G. Raffelt},
  journal= {arXiv preprint arXiv:astro-ph/0207220},
  year   = {2009}
}

Comments

Contribution to Dennis Sciama Memorial Volume of NAR, additional references and reference updates in revised version

R2 v1 2026-07-22T08:12:37.385Z