English

Relaxing the Big-bang Bound to the Baryon Density

Astrophysics 2009-10-22 v1 High Energy Physics - Phenomenology

Abstract

In the standard picture of big-bang nucleosynthesis the yields of D, 3^3He, 4^4He, and 7^7Li only agree with their inferred primordial abundances if the fraction of critical density contributed by baryons is between 0.01h20.01h^{-2} and 0.02h20.02h^{-2} (hh is the present value of the Hubble constant in units of 100\kms\Mpc1100\kms\Mpc^{-1}). This is the basis of the very convincing and important argument that baryons can contribute at most 10\% of critical density and thus cannot close the Universe. Nonstandard scenarios involving decaying particles,1^1 inhomogeneities in the baryon density,2^2 and even more exotic ideas3^3 put forth to evade this bound have been largely unsuccessful.4^4 We suggest a new way of relaxing the bound: If the tau neutrino has a mass of 20\MeV30\MeV20\MeV-30\MeV and lifetime of 200sec1000sec200\sec -1000\sec, and its decay products include electron neutrinos, the bound to the baryon mass density can be loosened by a about factor of 1010. The key is the decay-generated electron antineutrinos: around the time of nucleosynthesis they are captured by protons to produce neutrons, thereby changing the outcome of nucleosynthesis. Experiments at e±e^\pm colliders should soon be sensitive to a tau-neutrino mass in the required range.

Keywords

Cite

@article{arxiv.astro-ph/9403054,
  title  = {Relaxing the Big-bang Bound to the Baryon Density},
  author = {G. Gyuk and M. S. Turner},
  journal= {arXiv preprint arXiv:astro-ph/9403054},
  year   = {2009}
}

Comments

10p, FERMILAB Pub-94/059A, Figs available on request