Non-thermal CMSSM with a 125 GeV Higgs
arXiv:1502.05672
Abstract
We study the phenomenology of the CMSSM/mSUGRA with non-thermal neutralino dark matter. Besides the standard parameters of the CMSSM we include the reheating temperature as an extra parameter. Imposing radiative electroweak symmetry breaking with a Higgs mass around 125 GeV and no dark matter overproduction, we contrast the scenario with different experimental bounds from colliders (LEP, LHC), cosmic microwave background (Planck), direct (LUX, XENON100, CDMS, IceCube) and indirect (Fermi) dark matter searches. The allowed parameter space is characterised by a Higgsino-like LSP with a mass around 300 GeV. The observed dark matter abundance can be saturated for reheating temperatures around 2 GeV while larger temperatures require extra non-neutralino dark matter candidates and extend the allowed parameter space. Sfermion and gluino masses are in the few TeV region. These scenarios can be achieved in string models of sequestered supersymmetry breaking which avoid cosmological moduli problems and are compatible with gauge coupling unification. Astrophysics and particle physics experiments will fully investigate this non-thermal scenario in the near future.
References in corpus (12)
- The Well-Tempered Neutralino
- Hadronic Uncertainties in the Elastic Scattering of Supersymmetric Dark Matter
- Moduli-Induced Gravitino Problem
- Non-thermal Dark Matter and the Moduli Problem in String Frameworks
- Dark Radiation in LARGE Volume Models
- Unified origin of baryons and dark matter
- Monojet plus soft dilepton signal from light higgsino pair production at LHC14
- The -MSSM - An Theory motivated model of Particle Physics
- Cladogenesis: Baryon-Dark Matter Coincidence from Branchings in Moduli Decay
- Mirage in the Sky: Non-thermal Dark Matter, Gravitino Problem, and Cosmic Ray Anomalies
- LARGE Volume String Compactifications at Finite Temperature
- Inflationary Constraints on Late Time Modulus Dominated Cosmology