Precision Primordial $^4$He Measurement with CMB Experiments
Abstract
Big bang nucleosynthesis (BBN) and the cosmic microwave background (CMB) are two major pillars of cosmology. Standard BBN accurately predicts the primordial light element abundances (He, D, He and Li), depending on one parameter, the baryon density. Light element observations are used as a baryometers. The CMB anisotropies also contain information about the content of the universe which allows an important consistency check on the Big Bang model. In addition CMB observations now have sufficient accuracy to not only determine the total baryon density, but also resolve its principal constituents, H and He. We present a global analysis of all recent CMB data, with special emphasis on the concordance with BBN theory and light element observations. We find and (fraction of baryon mass as He) using CMB data alone, in agreement with He abundance observations. With this concordance established we show that the inclusion of BBN theory priors significantly reduces the volume of parameter space. In this case, we find and . We also find that the inclusion of deuterium abundance observations reduces the and ranges by a factor of 2. Further light element observations and CMB anisotropy experiments will refine this concordance and sharpen BBN and the CMB as tools for precision cosmology.
Cite
@article{arxiv.astro-ph/0307080,
title = {Precision Primordial $^4$He Measurement with CMB Experiments},
author = {Greg Huey and Richard H. Cyburt and Benjamin D. Wandelt},
journal= {arXiv preprint arXiv:astro-ph/0307080},
year = {2009}
}
Comments
7 pages, 3 color figures made minor changes to bring inline with journal version