The Neutron Mean Life and Big Bang Nucleosynthesis
Abstract
We explore the effect of neutron lifetime and its uncertainty on standard big-bang nucleosynthesis (BBN). BBN describes the cosmic production of the light nuclides , , +, , and + in the first minutes of cosmic time. The neutron mean life has two roles in modern BBN calculations: (1) it normalizes the matrix element for weak interconversions, and (2) it sets the rate of free neutron decay after the weak interactions freeze out. We review the history of the interplay between measurements and BBN, and present a study of the sensitivity of the light element abundances to the modern neutron lifetime measurements. We find that uncertainties dominate the predicted error budget, but these theory errors remain smaller than the uncertainties in observations, even with the dispersion in recent neutron lifetime measurements. For the other light-element predictions, contributes negligibly to their error budget. Turning the problem around, we combine present BBN and cosmic microwave background (CMB) determinations of the cosmic baryon density to a "cosmologically preferred" mean life of , which is consistent with experimental mean life determinations. We go on to show that if future astronomical and cosmological helium observations can reach an uncertainty of in the mass fraction , this could begin to discriminate between the mean life determinations.
Keywords
Cite
@article{arxiv.2303.04140,
title = {The Neutron Mean Life and Big Bang Nucleosynthesis},
author = {Tsung-Han Yeh and Keith A. Olive and Brian D. Fields},
journal= {arXiv preprint arXiv:2303.04140},
year = {2023}
}
Comments
27 pages, 11 figures