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Search strategy for gluinos at the LHC with a Higgs boson decaying into tau leptons

Search strategy for gluinos at the LHC with a Higgs boson decaying into tau leptons
AbstractThe possibility in supersymmetric scenarios that the dark matter candidate is a Higgsino-like neutralino means that its production can be associated with Higgs bosons. Taking advantage of this fact, we propose a LHC search strategy for gluinos with $$\tau $$ τ leptons in the final state, coming from the decay of a Higgs boson. We consider the strong production of a pair of gluinos, one of which decays into the Higgsino plus jets while the other decays into the bino plus jets. In turn, this bino decays into the Higgsino plus a Higgs boson which finally decays into a $$\tau $$ τ -lepton pair. Therefore, the experimental signature under study consists of 4 jets, 2 $$\tau $$ τ leptons, and a large amount of missing transverse energy. This work represents a proof of principle of a search that is sensitive to a spectrum such that the gluino does not directly decay to the dark matter candidate but to an intermediate electroweakino that then produces Higgs bosons in its subsequent decay. Our cut-based search strategy allows us to reach, for a LHC center-of-mass energy of 14 TeV and a total integrated luminosity of 1 ab$$^{-1}$$ - 1 , significances of up to 2 standard deviations, considering systematic uncertainties in the SM background of 30%. The projections for 3 ab$$^{-1}$$ - 1 are encouraging, with significances at the evidence level, which in more optimistic experimental scenarios could exceed 4 standard deviations.
- National University of La Plata Argentina
- Spanish National Research Council Spain
- University of Notre Dame United States
- University of Notre Dame United States
- National Scientific and Technical Research Council Argentina
Nuclear and High Energy Physics, Pair production, History, Higgs boson, Neutralino, Nuclear physics, FOS: Physical sciences, QC770-798, Astrophysics, Electron, Lepton, Particle Dark Matter and Detection Methods, High Energy Physics - Phenomenology (hep-ph), Nuclear and particle physics. Atomic energy. Radioactivity, https://purl.org/becyt/ford/1.3, Dark Matter, Boson, Cosmological Parameters and Dark Energy, Particle Physics and High-Energy Collider Experiments, https://purl.org/becyt/ford/1, Physics, Missing energy, Particle physics, Astronomy and Astrophysics, Higgs Boson, Standard Model (mathematical formulation), Physics beyond the Standard Model, QB460-466, Gauge (firearms), High Energy Physics - Phenomenology, Supersymmetry Phenomenology, Physics and Astronomy, Large Hadron Collider, Archaeology, Minimal Supersymmetric Standard Model, Collider Physics, Physical Sciences, Higgsino, LHC, Supersymmetry
Nuclear and High Energy Physics, Pair production, History, Higgs boson, Neutralino, Nuclear physics, FOS: Physical sciences, QC770-798, Astrophysics, Electron, Lepton, Particle Dark Matter and Detection Methods, High Energy Physics - Phenomenology (hep-ph), Nuclear and particle physics. Atomic energy. Radioactivity, https://purl.org/becyt/ford/1.3, Dark Matter, Boson, Cosmological Parameters and Dark Energy, Particle Physics and High-Energy Collider Experiments, https://purl.org/becyt/ford/1, Physics, Missing energy, Particle physics, Astronomy and Astrophysics, Higgs Boson, Standard Model (mathematical formulation), Physics beyond the Standard Model, QB460-466, Gauge (firearms), High Energy Physics - Phenomenology, Supersymmetry Phenomenology, Physics and Astronomy, Large Hadron Collider, Archaeology, Minimal Supersymmetric Standard Model, Collider Physics, Physical Sciences, Higgsino, LHC, Supersymmetry
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