English

Broken R-Parity in the Sky and at the LHC

High Energy Physics - Phenomenology 2010-11-01 v2 High Energy Physics - Experiment High Energy Physics - Theory

Abstract

Supersymmetric extensions of the Standard Model with small R-parity and lepton number violating couplings are naturally consistent with primordial nucleosynthesis, thermal leptogenesis and gravitino dark matter. We consider supergravity models with universal boundary conditions at the grand unification scale, and scalar tau-lepton or bino-like neutralino as next-to-lightest superparticle (NLSP). Recent Fermi-LAT data on the isotropic diffuse gamma-ray flux yield a lower bound on the gravitino lifetime. Comparing two-body gravitino and neutralino decays we find a lower bound on a neutralino NLSP decay length, cτχ10\gsim30cmc \tau_{\chi^0_1} \gsim 30 cm. Together with gravitino and neutralino masses one obtains a microscopic determination of the Planck mass. For a stau-NLSP there exists no model-independent lower bound on the decay length. Here the strongest bound comes from the requirement that the cosmological baryon asymmetry is not washed out, which yields cττ~1\gsim4mmc \tau_{\tilde\tau_1} \gsim 4 mm. However, without fine-tuning of parameters, one finds much larger decay lengths. For typical masses, m3/2100GeVm_{3/2} \sim 100 GeV and mNLSP150GeVm_{NLSP} \sim 150 GeV, the discovery of a photon line with an intensity close to the Fermi-LAT limit would imply a decay length cτNLSPc\tau_{NLSP} of several hundred meters, which can be measured at the LHC.

Keywords

Cite

@article{arxiv.1007.5007,
  title  = {Broken R-Parity in the Sky and at the LHC},
  author = {Sergei Bobrovskyi and Wilfried Buchmuller and Jan Hajer and Jonas Schmidt},
  journal= {arXiv preprint arXiv:1007.5007},
  year   = {2010}
}

Comments

30 pages, 8 figures; v2: published version, reference added