English

General Heavy WIMP Nucleon Elastic Scattering

High Energy Physics - Phenomenology 2023-09-07 v1 Cosmology and Nongalactic Astrophysics High Energy Physics - Experiment

Abstract

Heavy WIMP (weakly-interacting-massive-particle) effective field theory is used to compute the WIMP-nucleon scattering rate for general heavy electroweak multiplets through order mW/Mm_W/M, where mWm_W and MM denote the electroweak and WIMP mass scales. The lightest neutral component of such an electroweak multiplet is a candidate dark matter particle, either elementary or composite. Existing computations for certain representations of electroweak SU(2)W×U(1)Y\mathrm{SU(2)}_W\times \mathrm{U(1)}_Y reveal a cancellation of amplitudes from different effective operators at leading and subleading orders in 1/M1/M, yielding small cross sections that are below current dark matter direct detection experimental sensitivities. We extend those computations and consider all low-spin (spin-0, spin-1/2, spin-1, spin-3/2) heavy electroweak multiplets with arbitrary SU(2)W×U(1)Y\mathrm{SU(2)}_W\times \mathrm{U(1)}_Y representations and provide benchmark cross section results for dark matter direct detection experiments. For most self-conjugate TeV WIMPs with isospin 3\le 3, the cross sections are below current experimental limits but within reach of next-generation experiments. An exception is the case of pure electroweak doublet, where WIMPs are hidden below the neutrino floor.

Keywords

Cite

@article{arxiv.2309.02715,
  title  = {General Heavy WIMP Nucleon Elastic Scattering},
  author = {Qing Chen and Gui-Jun Ding and Richard J. Hill},
  journal= {arXiv preprint arXiv:2309.02715},
  year   = {2023}
}

Comments

22 pages, 8 figures

R2 v1 2026-06-28T12:13:51.513Z