English

The surprising influence of late charged current weak interactions on Big Bang Nucleosynthesis

Cosmology and Nongalactic Astrophysics 2016-09-07 v1 High Energy Physics - Phenomenology

Abstract

The weak interaction charged current processes (νe+np+e\nu_e+n\leftrightarrow p+e^-, νˉe+pn+e+\bar\nu_e +p\leftrightarrow n+e^+, np+e+νˉen\leftrightarrow p+e^-+\bar\nu_e) interconvert neutrons and protons in the early universe and have significant influence on Big Bang Nucleosynthesis (BBN) light-element abundance yields, particulary that for 4He^{4}{\rm He}. We demonstrate that the influence of these processes is still significant even when they operate well below temperatures T0.7MeVT\sim0.7\,{\rm MeV} usually invoked for "weak freeze-out," and in fact down nearly into the alpha-particle formation epoch (T0.1MeVT \approx 0.1\,{\rm MeV}). This physics is correctly captured in commonly used BBN codes, though this late-time, low-temperature persistent effect of the isospin-changing weak processes, and the sensitivity of the associated rates to lepton energy distribution functions and blocking factors are not widely appreciated. We quantify this late-time influence by analyzing weak interaction rate dependence on the neutron lifetime, lepton energy distribution functions, entropy, the proton-neutron mass difference, and Hubble expansion rate. The effects we point out here render BBN a keen probe of any beyond-standard-model physics that alters lepton number/energy distributions, even subtly, in epochs of the early universe all the way down to near T=100keVT=100\,{\rm keV}.

Keywords

Cite

@article{arxiv.1607.02797,
  title  = {The surprising influence of late charged current weak interactions on Big Bang Nucleosynthesis},
  author = {E. Grohs and G. M. Fuller},
  journal= {arXiv preprint arXiv:1607.02797},
  year   = {2016}
}

Comments

27 pages, 8 figures