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Freeze-in production of FIMP dark matter

Journal of High Energy Physics · 2010 · Vol. 2010(3)
Lawrence J. HallKarsten JedamzikJohn March-RussellStephen M. West

Abstract

We propose an alternate, calculable mechanism of dark matter genesis, “thermal freeze-in”, involving a Feebly Interacting Massive Particle (FIMP) interacting so feebly with the thermal bath that it never attains thermal equilibrium. As with the conventional “thermal freeze-out” production mechanism, the relic abundance reflects a combination of initial thermal distributions together with particle masses and couplings that can be measured in the laboratory or astrophysically. The freeze-in yield is IR dominated by low temperatures near the FIMP mass and is independent of unknown UV physics, such as the reheat temperature after inflation. Moduli and modulinos of string theory compactifications that receive mass from weak-scale supersymmetry breaking provide implementations of the freeze-in mechanism, as do models that employ Dirac neutrino masses or GUT-scale-suppressed interactions. Experimental signals of freeze-in and FIMPs can be spectacular, including the production of new metastable coloured or charged particles at the LHC as well as the alteration of big bang nucleosynthesis.

Dark Matter and Cosmic PhenomenaParticle physics theoretical and experimental studiesComputational Physics and Python ApplicationsDark matterHidden sectorString (physics)SupersymmetryMassive particleString theoryNeutrinoThermalStandard Model (mathematical formulation)Metastability

Funding

  • National Science Foundation
  • U.S. Department of Energy
  • University of Oxford
  • South East Physics Network
  • Science and Technology Facilities Council
  • Nuclear Physics
Citations
1,103
FWCI
23.07
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References
27
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References
Two U(1)'s and ϵ charge shifts
Physics Letters B · 1986 · 2,370 citations
Axions in string theory
Journal of High Energy Physics · 2006 · 1,487 citations
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