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Constraints on Dark Matter Interactions with Standard Model Particles from Cosmic Microwave Background Spectral Distortions. | LitMetric

Constraints on Dark Matter Interactions with Standard Model Particles from Cosmic Microwave Background Spectral Distortions.

Phys Rev Lett

Department of Physics and Astronomy, Johns Hopkins University, 3400 North Charles Street, Baltimore, Maryland 21218, USA.

Published: August 2015

AI Article Synopsis

  • A new method is introduced to limit the interactions (scattering) between dark matter and regular particles in the early Universe by observing effects on the cosmic microwave background (CMB).
  • The process involves nonrelativistic dark matter interacting with photons, which alters the spectral characteristics of the CMB, potentially indicating the nature and properties of dark matter.
  • Using measurements from the Far-Infrared Absolute Spectrophotometer, researchers establish upper limits on scattering cross sections for various interactions at lower dark matter masses and suggest that future experiments could enhance sensitivity to higher masses.

Article Abstract

We propose a new method to constrain elastic scattering between dark matter (DM) and standard model particles in the early Universe. Direct or indirect thermal coupling of nonrelativistic DM with photons leads to a heat sink for the latter. This results in spectral distortions of the cosmic microwave background (CMB), the amplitude of which can be as large as a few times the DM-to-photon-number ratio. We compute CMB spectral distortions due to DM-proton, DM-electron, and DM-photon scattering for generic energy-dependent cross sections and DM mass m_{χ}≳1 keV. Using Far-Infrared Absolute Spectrophotometer measurements, we set constraints on the cross sections for m_{χ}≲0.1 MeV. In particular, for energy-independent scattering we obtain σ_{DM-proton}≲10^{-24} cm^{2} (keV/m_{χ})^{1/2}, σ_{DM-electron}≲10^{-27} cm^{2} (keV/m_{χ})^{1/2}, and σ_{DM-photon}≲10^{-39} cm^{2} (m_{χ}/keV). An experiment with the characteristics of the Primordial Inflation Explorer would extend the regime of sensitivity up to masses m_{χ}~1 GeV.

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Source
http://dx.doi.org/10.1103/PhysRevLett.115.071304DOI Listing

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