Overcoming Velocity Suppression in Dark-Matter Direct-Detection Experiments
Abstract
Pseudoscalar couplings between Standard-Model quarks and dark matter are normally not considered relevant for dark-matter direct-detection experiments because they lead to velocity-suppressed scattering cross-sections in the non-relativistic limit. However, at the nucleon level, such couplings are effectively enhanced by factors of order , where and are appropriate nucleon and quark masses respectively. This enhancement can thus be sufficient to overcome the corresponding velocity suppression, implying --- contrary to common lore --- that direct-detection experiments can indeed be sensitive to pseudoscalar couplings. In this work, we explain how this enhancement arises, and present a model-independent analysis of pseudoscalar interactions at direct-detection experiments. We also identify those portions of the corresponding dark-matter parameter space which can be probed at current and future experiments of this type, and discuss the role of isospin violation in enhancing the corresponding experimental reach.
Cite
@article{arxiv.1312.7772,
title = {Overcoming Velocity Suppression in Dark-Matter Direct-Detection Experiments},
author = {Keith R. Dienes and Jason Kumar and Brooks Thomas and David Yaylali},
journal= {arXiv preprint arXiv:1312.7772},
year = {2014}
}
Comments
20 pages, LaTeX, 2 figures, 2 tables. Revised to match published version