English

Spin portal to dark matter

High Energy Physics - Phenomenology 2018-07-11 v1 High Energy Physics - Theory

Abstract

In this work we study the possibility that dark matter fields transform in the (1,0)(0,1)(1,0)\oplus(0,1) representation of the Homogeneous Lorentz Group. In an effective theory approach, we study the lowest dimension interacting terms of dark matter with standard model fields, assuming that dark matter fields transform as singlets under the standard model gauge group. There are three dimension-four operators, two of them yielding a Higgs portal to dark matter. The third operator couple the photon and Z0Z^0 fields to the higher multipoles of dark matter, yielding a \textit{spin portal} to dark matter. For dark matter (DD) mass below a half of the Z0Z^0 mass, the decays Z0DˉDZ^0\to \bar{D} D and HDˉDH\to \bar{D}D are kinematically allowed and contribute to the invisible widths of the Z0Z^0 and HH. We calculate these decays and use experimental results on these invisible widths to constrain the values of the low energy constants finding in general that effects of the spin portal can be more important that those of the Higgs portal. We calculate the dark matter relic density in our formalism, use the constraints on the low energy constants from the Z0Z^0 and HH invisible widths and compare our results with the measured relic density, finding that dark matter with a (1,0)(0,1)(1,0)\oplus(0,1) space-time structure must have a mass M>43 GeVM>43 ~ GeV.

Keywords

Cite

@article{arxiv.1801.09853,
  title  = {Spin portal to dark matter},
  author = {H. Hernández-Arellano and M. Napsuciale and S. Rodríguez},
  journal= {arXiv preprint arXiv:1801.09853},
  year   = {2018}
}

Comments

14 pages, 7 figures

R2 v1 2026-06-23T00:02:52.644Z