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Saving the fourth-generation Higgs boson with radion mixing

Mariana Frank*, Beste Korutlu, and Manuel Toharia

  • Department of Physics, Concordia University, 7141 Sherbrooke St. West, Montreal, Quebec, Canada

  • *mfrank@alcor.concordia.ca
  • beste.korutlu@gmail.com
  • mtoharia@physics.concordia.ca

Phys. Rev. D 85, 115025 – Published 26 June, 2012

DOI: https://doi.org/10.1103/PhysRevD.85.115025

Abstract

We study Higgs-radion mixing in a warped extra-dimensional model with standard model fields in the bulk, and we include a fourth generation of chiral fermions. The main problem with the fourth generation is that, in the absence of Higgs-radion mixing, it produces a large enhancement in the Higgs production cross section, now severely constrained by LHC data. We analyze the production and decay rates of the two physical states emerging from the mixing and confront them with present LHC data. We show that the current signals observed can be compatible with the presence of one, or both, of these Higgs-radion mixed states (the ϕ and the h), although with a severely restricted parameter space. In particular, the radion interaction scale must be quite low, Λϕ11.5TeV. If mϕ125GeV, the h state must be heavier (mh>320). If mh125GeV, the ϕ state must be quite light or close in mass (mϕ120GeV). We also present the modified decay branching ratios of the mixed Higgs-radion states, including flavor-violating decays into fourth-generation quarks and leptons. The windows of allowed parameter space obtained are very sensitive to the increased precision of upcoming LHC data. During the present year, a clear picture of this scenario will emerge, either confirming or further severely constraining this scenario.

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