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arXiv:astro-ph/9403054·v1·Astrophysics

Relaxing the Big-bang Bound to the Baryon Density

G. Gyuk🇺🇸 · M.S. Turner🇺🇸

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Abstract

In the standard picture of big-bang nucleosynthesis the yields of D, He, He, and Li only agree with their inferred primordial abundances if the fraction of critical density contributed by baryons is between and ( is the present value of the Hubble constant in units of ). 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, inhomogeneities in the baryon density, and even more exotic ideas put forth to evade this bound have been largely unsuccessful. We suggest a new way of relaxing the bound: If the tau neutrino has a mass of and lifetime of , and its decay products include electron neutrinos, the bound to the baryon mass density can be loosened by a about factor of . 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 colliders should soon be sensitive to a tau-neutrino mass in the required range.

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

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