English

Effect of Long-lived Strongly Interacting Relic Particles on Big Bang Nucleosynthesis

High Energy Physics - Phenomenology 2009-11-10 v1

Abstract

It has been suggested that relic long-lived strongly interacting massive particles (SIMPs, or XX particles) existed in the early universe. We study effects of such long-lived unstable SIMPs on big bang nucleosynthesis (BBN) assuming that such particles existed during the BBN epoch, but then decayed long before they could be detected. The interaction strength between an XX particle and a nucleon is assumed to be similar to that between nucleons. We then calculate BBN in the presence of the unstable neutral charged X0X^0 particles taking into account the capture of X0X^0 particles by nuclei to form XX-nuclei. We also study the nuclear reactions and beta decays of XX-nuclei. We find that SIMPs form bound states with normal nuclei during a relatively early epoch of BBN. This leads to the production of heavy elements which remain attached to them. Constraints on the abundance of X0X^0 particles during BBN are derived from observationally inferred limits on the primordial light element abundances. Particle models which predict long-lived colored particles with lifetimes longer than \sim 200 s are rejected based upon these constraints.

Keywords

Cite

@article{arxiv.0906.3516,
  title  = {Effect of Long-lived Strongly Interacting Relic Particles on Big Bang Nucleosynthesis},
  author = {Motohiko Kusakabe and Toshitaka Kajino and Takashi Yoshida and Grant J. Mathews},
  journal= {arXiv preprint arXiv:0906.3516},
  year   = {2009}
}

Comments

19 pages, 4 figures