Single top quarks and dark matter

Deborah Pinna, Alberto Zucchetta, Matthew R. Buckley, and Florencia Canelli
Phys. Rev. D 96, 035031 – Published 30 August 2017

Abstract

Processes with dark matter interacting with the standard model fermions through new scalars or pseudoscalars with flavor-diagonal couplings proportional to fermion mass are well motivated theoretically, and provide a useful phenomenological model with which to interpret experimental results. Two modes of dark matter production from these models have been considered in the existing literature: pairs of dark matter produced through top quark loops with an associated monojet in the event, and pair production of dark matter with pairs of heavy flavored quarks (tops or bottoms). In this paper, we demonstrate that a third, previously overlooked channel yields a non-negligible contribution to LHC dark matter searches in these models. In spite of a generally lower production cross section at LHC when compared to the associated top-pair channel, non-flavor violating single top quark processes are kinematically favored and can significantly increase the sensitivity to these models. Including dark matter production in association with a single top quark through scalar or pseudoscalar mediators, the exclusion limit set by the LHC searches for dark matter can be improved by 30% up to a factor of two, depending on the mass assumed for the mediator particle.

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  • Received 9 March 2017

DOI:https://doi.org/10.1103/PhysRevD.96.035031

© 2017 American Physical Society

Physics Subject Headings (PhySH)

Particles & Fields

Authors & Affiliations

Deborah Pinna1,*, Alberto Zucchetta1,†, Matthew R. Buckley2,‡, and Florencia Canelli1,§

  • 1Department of Physics, University of Zurich, 190 Winterthurerstrasse, 8057 Zurich, Switzerland
  • 2Department of Physics and Astronomy, Rutgers University, Piscataway, New Jersey 08854, USA

  • *deborah.pinna@cern.ch
  • a.zucchetta@cern.ch
  • mbuckley@physics.rutgers.edu
  • §canelli@physik.uzh.ch

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Issue

Vol. 96, Iss. 3 — 1 August 2017

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