Sub-MeV Dark Matter and the Goldstone Modes of Superfluid Helium
arXiv:1907.10635 · doi:10.1103/PhysRevD.100.116007
Abstract
We show how the relativistic effective field theory for the superfluid phase of helium-4 can replace the standard methods used to compute the production rates of low momentum excitations due to the interaction with an external probe. This is done by studying the scattering problem of a light dark matter particle in the superfluid, and comparing to some existing results. We show that the rate of emission of two phonons, the Goldstone modes of the effective theory, gets strongly suppressed for sub-MeV dark matter particles due to a fine cancellation between two different tree-level diagrams in the limit of small exchanged momenta. This phenomenon is found to be a consequence of the particular choice of the potential felt by the dark matter particle in helium. The predicted rates can vary by orders of magnitude if this potential is changed. We prove that the dominant contribution to the total emission rate is provided by the phonons. Finally, we analyze the angular distributions for the emissions of one and two phonons, and discuss how they can be used to measure the mass of the hypothetical dark matter particle hitting the helium target.
5 pages, 3 figures; v2: references updated and typos corrected
References in corpus (13)
- Low-Mass Dark Matter Search with the DarkSide-50 Experiment
- On the local dark matter density
- Detection of sub-MeV Dark Matter with Three-Dimensional Dirac Materials
- Semiconductor Probes of Light Dark Matter
- US Cosmic Visions: New Ideas in Dark Matter 2017: Community Report
- Light Dark Matter in Superfluid Helium: Detection with Multi-excitation Production
- Sub-GeV Dark Matter Detection with Electron Recoils in Carbon Nanotubes
- Detection of sub-GeV Dark Matter and Solar Neutrinos via Chemical-Bond Breaking
- Dark Matter Detection Using Helium Evaporation and Field Ionization
- Sub-GeV Dark Matter in Superfluid He-4: an Effective Theory Approach
- The Dark Matter Phonon Coupling
- TASI lectures on dark matter models and direct detection
- Exploring the ultra-light to sub-MeV dark matter window with atomic clocks and co-magnetometers
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