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Published on: November 15, 2013
First Galaxy Ultraviolet Luminosity Function Limits on Dark Matter-Proton Scattering
Hovav Lazare1, Ely D Kovetz1,2, Kimberly K Boddy2
1Ben-Gurion University of the Negev, Department of Physics, Be'er Sheva 84105, Israel.
This study investigates dark matter (DM) and proton scattering using galaxy luminosity functions. Including lensed data significantly improved constraints on DM-proton interactions, surpassing previous limits.
Area of Science:
- Cosmology
- Astrophysics
- Particle Physics
Background:
- Dark matter (DM) interactions with protons can suppress small-scale cosmic structure formation.
- Understanding these interactions is crucial for interpreting cosmological observations.
Purpose of the Study:
- To search for evidence of DM-proton scattering using high-redshift ultraviolet galaxy luminosity functions (UVLFs).
- To constrain the DM-proton interaction cross section for various interaction types (n=0, 2, 4).
Main Methods:
- Utilized Hubble Space Telescope (HST) UVLF data from blank and lensed fields.
- Employed modified Boltzmann solver (dmeff) and gallumi for interacting DM.
- Incorporated Planck CMB and Pantheon supernova data in a Bayesian analysis.
Main Results:
- Lensed UVLF data significantly improved constraints on DM-proton scattering cross sections for n>0.
- New bounds surpass existing limits from Milky Way satellite abundance and CMB anisotropies.
- For specific DM masses, upper bounds were set at 1.1×10⁻²⁵ cm² (n=2) and 2.1×10⁻²² cm² (n=4).
Conclusions:
- High-redshift UVLFs, especially with lensed data, are powerful probes of DM-proton interactions.
- The study provides stringent constraints on DM-proton scattering, particularly for velocity-dependent interactions.
- Results highlight the importance of small-scale probes for understanding dark matter properties.
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