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Leptophobic Dark Matter and the Baryon Number Violation Scale

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arxiv 1810.06646 v2 pith:KP52XYCR submitted 2018-10-15 hep-ph hep-ex

Leptophobic Dark Matter and the Baryon Number Violation Scale

classification hep-ph hep-ex
keywords matterdarkscalebaryoncandidateleptophobicnumberbound
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We discuss the possible connection between the scale for baryon number violation and the cosmological bound on the dark matter relic density. A simple gauge theory for baryon number which predicts the existence of a leptophobic cold dark matter particle candidate is investigated. In this context, the dark matter candidate is a Dirac fermion with mass defined by the new symmetry breaking scale. Using the cosmological bounds on the dark matter relic density we find the upper bound on the symmetry breaking scale around 200 TeV. The properties of the leptophobic dark matter candidate are investigated in great detail and we show the prospects to test this theory at current and future experiments. We discuss the main implications for the mechanisms to explain the matter and antimatter asymmetry in the Universe.

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  1. Probing mixed-state dark matter and flavor observables in a scalar-assisted baryonic gauge theory

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    Adding a colored scalar S1 to a U(1)_B dark matter model correlates dark matter freeze-out with b→s μ+μ− observables, but the flavor amplitudes use a Z'–muon coupling that the model's zero-kinetic-mixing limit forbids.