English

Discrete R Symmetries and Low Energy Supersymmetry

High Energy Physics - Phenomenology 2014-11-20 v3 High Energy Physics - Theory

Abstract

If nature exhibits low energy supersymmetry, discrete (non-Z2Z_2) R symmetries may well play an important role. In this paper, we explore such symmetries. We generalize gaugino condensation, constructing large classes of models which are classically scale invariant, and which spontaneously break discrete R symmetries (but not supersymmetry). The order parameters for the breaking include chiral singlets. These simplify construction of models with metastable dynamical supersymmetry breaking. We explain that in gauge mediation, the problem of the cosmological constant makes "retrofitting" particularly natural -- almost imperative. We describe new classes of models, with interesting scales for supersymmetry breaking, and which allow simple solutions of the μ\mu problem. We argue that models exhibiting such R symmetries can readily solve not only the problem of dimension four operators and proton decay, but also dimension five operators. On the other hand, in theories of "gravity mediation", the breaking of R symmetry is typically of order MpM_p, R parity is required to suppress dimension four BB and LL violating operators, and dimension five operators remain problematic.

Keywords

Cite

@article{arxiv.0909.1615,
  title  = {Discrete R Symmetries and Low Energy Supersymmetry},
  author = {Michael Dine and John Kehayias},
  journal= {arXiv preprint arXiv:0909.1615},
  year   = {2014}
}

Comments

17 pages, latex; references to earlier work added; typos fixed, minor corrections and revisions, journal version