English

The R Axion From Dynamical Supersymmetry Breaking

High Energy Physics - Phenomenology 2019-08-17 v3 Astrophysics High Energy Physics - Theory

Abstract

All generic, calculable models of dynamical supersymmetry breaking have a spontaneously broken RR symmetry and therefore contain an RR axion. We show that the axion is massive in any model in which the cosmological constant is fine-tuned to zero through an explicit RR-symmetry-breaking constant. In visible-sector models, the axion mass is in the 100 MeV range and thus evades astrophysical bounds. In nonrenormalizable hidden-sector models, the mass is of order of the weak scale and can have dangerous cosmological consequences similar to those already present from other fields. In renormalizable hidden- sector models, the axion mass is generally quite large, of order 10710^7 GeV. Typically, these axions are cosmologically safe. However, if the dominant decay mode is to gravitinos, the potentially large gravitino abundance that arises from axion decay after inflation might affect the successful predictions of big-bang nucleosynthesis. We show that the upper bound on the reheat temperature after standard inflation can be competitive with or stronger than bounds from thermal gravitino production, depending on the model and the gravitino mass.

Keywords

Cite

@article{arxiv.hep-ph/9405345,
  title  = {The R Axion From Dynamical Supersymmetry Breaking},
  author = {Jonathan Bagger and Erich Poppitz and Lisa Randall},
  journal= {arXiv preprint arXiv:hep-ph/9405345},
  year   = {2019}
}

Comments

Minor changes to bring the archived version of the paper into alignment with the published version