Implications of a scalar dark force for terrestrial experiments

Sean M. Carroll, Sonny Mantry, and Michael J. Ramsey-Musolf
Phys. Rev. D 81, 063507 – Published 5 March 2010

Abstract

A long-range intergalactic force between dark matter (DM) particles, mediated by an ultralight scalar, is tightly constrained by galactic dynamics and large scale structure formation. We examine the implications of such a ‘‘dark force” for several terrestrial experiments, including Eötvös tests of the Weak Equivalence Principle (WEP), direct-detection DM searches, and collider studies. The presence of a dark force implies a nonvanishing effect in Eötvös tests that could be probed by current and future experiments depending on the DM model. For scalar DM that is a singlet under the standard model gauge groups, a dark force of astrophysically relevant magnitude is ruled out in large regions of parameter space by the DM relic density and WEP constraints. WEP tests also imply constraints on the Higgs-exchange contributions to the spin-independent (SI) DM-nucleus direct-detection cross section. For WIMP scenarios, these considerations constrain Higgs-exchange contributions to the SI cross section to be subleading compared to gauge-boson mediated contributions. In multicomponent DM scenarios, a dark force would preclude large shifts in the rate for Higgs decay to two photons associated with DM-multiplet loops that might otherwise lead to measurable deviations at the LHC or a future linear collider. The combination of observations from galactic dynamics, large scale structure formation, Eötvös experiments, DM-direct-detection experiments, and colliders can further constrain the size of new long-range forces in the dark sector.

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  • Received 20 October 2009

DOI:https://doi.org/10.1103/PhysRevD.81.063507

©2010 American Physical Society

Authors & Affiliations

Sean M. Carroll1,*, Sonny Mantry2,†, and Michael J. Ramsey-Musolf2,1,‡

  • 1California Institute of Technology, Pasadena, California 91125, USA
  • 2University of Wisconsin-Madison, Madison, Wisconsin 53706, USA

  • *seancarroll@gmail.com
  • mantry@wisc.edu
  • mjrm@physics.wisc.edu

See Also

Dark-Matter-Induced Violation of the Weak Equivalence Principle

Sean M. Carroll, Sonny Mantry, Michael J. Ramsey-Musolf, and Christoper W. Stubbs
Phys. Rev. Lett. 103, 011301 (2009)

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Vol. 81, Iss. 6 — 15 March 2010

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