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      An SU(6) GUT Origin of the TeV-Scale Vector-like Particles Associated with the 750 GeV Diphoton Resonance

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          Abstract

          We consider the \(SU(6)\) GUT model as an explanation for the diphoton final state excess, where the masses of all associated particles are linked with a new symmetry breaking scale. In this model, the diphoton final states arise due to loops involving three pairs of new vector-like particles having the same quantum numbers as down-type quarks and lepton doublets. These new vector-like fermions are embedded alongside the SM fermions into minimal anomaly-free representations of the \(SU(6)\) gauge symmetry. The \(SU(6)\) symmetry is broken to the Standard Model times \(U(1)_X\) at the GUT scale, and masses for the vector-like fermions arise at the TeV scale only after the residual \(U(1)_X\) symmetry is broken. The vector-like fermions do not acquire masses via breaking of the SM symmetry at the EW scale. The field which is responsible for the newly observed resonance belongs to the \(\bar{6}_H\) representation. The dark matter arises from the SM singlet fermion residing in \(\bar{6}\) and is of Majorana type. We explicitly demonstrate gauge coupling unification in this model, and also discuss the origin of neutrino masses. In addition to the diphoton final states, we make distinctive predictions for other final states which are likewise accessible to the ongoing LHC experimental effort.

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          Author and article information

          Journal
          2016-04-26
          2016-07-10
          Article
          10.1103/PhysRevD.94.036006
          1604.07838
          693887d5-0302-4d05-9acd-572b5f65483e

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

          History
          Custom metadata
          MI-TH-1614
          Phys. Rev. D 94, 036006 (2016)
          19 pages, 4 tables, 2 figures; v2: effective theory calculation has been replaced by full loop calculation, typos corrected, references added, dijet bounds from recent ATLAS analysis (ATLAS-CONF-2016-030) has been discussed
          hep-ph

          High energy & Particle physics
          High energy & Particle physics

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