English

A model of electroweakly interacting non-abelian vector dark matter

High Energy Physics - Phenomenology 2020-08-26 v2

Abstract

We propose an electroweakly interacting spin-1 dark matter (DM) model. The electroweak gauge symmetry, SU(2)L×_L\timesU(1)Y_Y, is extended into SU(2)0×_0\timesSU(2)1×_1 \times SU(2)2×_2 \timesU(1)Y_Y. A discrete symmetry exchanging SU(2)0_0 and SU(2)2_2 is imposed. This discrete symmetry stabilizes the DM candidate. The spin-1 DM particle (V0)V^0) and its SU(2)L_L partners (V±V^\pm) interact with the Standard Model (SM) electroweak gauge bosons without any suppression factors. Consequently, pairs of DM particles efficiently annihilate into the SM particles in the early universe, and the measured value of the DM energy density is easily realized by the thermal freeze-out mechanism. The model also predicts a heavy vector triplet (W±W'^\pm and ZZ') in the visible sector. They contribute to the DM annihilation processes. The mass ratio of ZZ' and V0V^0 determines values of various couplings, and constraints on WW' and ZZ' restrict regions of the parameter space that are viable for DM physics. We investigate the constraints from perturbative unitarity of scalar and gauge couplings, the Higgs signal strength, WW' search at the LHC, and DM direct detection experiments. It is found that the relic abundance of V0V^0 explains the right amount of the DM energy density for 3 TeV mV0\lesssim m_{V^0} \lesssim 19 TeV.

Keywords

Cite

@article{arxiv.2004.00884,
  title  = {A model of electroweakly interacting non-abelian vector dark matter},
  author = {Tomohiro Abe and Motoko Fujiwara and Junji Hisano and Kohei Matsushita},
  journal= {arXiv preprint arXiv:2004.00884},
  year   = {2020}
}

Comments

29 pages, 7 figures, 2 tables, the version published in JHEP

R2 v1 2026-06-23T14:36:28.162Z