Big Bang Nucleosynthesis Hunts Chameleon Dark Matter
Abstract
We study the chameleon field dark matter, dubbed \textit{scalaron}, in gravity in the Big Bang Nucleosynthesis (BBN) epoch. With an -correction term required to solve the singularity problem for gravity, we first find that the scalaron dynamics is governed by the term and the chameleon mechanism in the early universe, which makes the scalaron physics model-independent regarding the low-energy scale modification. In viable dark energy models including the correction, our analysis suggests the scalaron universally evolves in a way with a bouncing oscillation irrespective of the low-energy modification for the late-time cosmic acceleration. Consequently, we find a universal bound on the scalaron mass in the BBN epoch, to be reflected on the constraint for the coupling strength of the term, which turns out to be more stringent than the one coming from the fifth force experiments. It is then shown that the scalaron naturally develops a small enough fluctuation in the BBN epoch, hence can avoid the current BBN constraint placed by the latest Planck 2018 data, and can also have a large enough sensitivity to be hunted by the BBN, with more accurate measurements for light element abundances as well as the baryon number density fraction.
Keywords
Cite
@article{arxiv.1908.04146,
title = {Big Bang Nucleosynthesis Hunts Chameleon Dark Matter},
author = {Hua Chen and Taishi Katsuragawa and Shinya Matsuzaki and Taotao Qiu},
journal= {arXiv preprint arXiv:1908.04146},
year = {2020}
}
Comments
29 pages, 7 figures, Prepared for submission to JHEP