New Constraints on the Mass of Fermionic Dark Matter from Dwarf Spheroidal Galaxies
Abstract
Dwarf spheroidal galaxies are excellent systems to probe the nature of fermionic dark matter due to their high observed dark matter phase-space density. In this work, we review, revise and improve upon previous phase-space considerations to obtain lower bounds on the mass of fermionic dark matter particles. The refinement in the results compared to previous works is realised particularly due to a significantly improved Jeans analysis of the galaxies. We discuss two methods to obtain phase-space bounds on the dark matter mass, one model-independent bound based on Pauli's principle, and the other derived from an application of Liouville's theorem. As benchmark examples for the latter case, we derive constraints for thermally decoupled particles and (non-)resonantly produced sterile neutrinos. Using the Pauli principle, we report a model-independent lower bound of at 68% CL and at 95% CL. For relativistically decoupled thermal relics, this bound is strengthened to at 68% CL and at 95% CL, whilst for non-resonantly produced sterile neutrinos the constraint is at 68% CL and at 95% CL. Finally, the phase-space bounds on resonantly produced sterile neutrinos are compared with complementary limits from X-ray, Lyman- and Big Bang Nucleosynthesis observations.
Keywords
Cite
@article{arxiv.2010.03572,
title = {New Constraints on the Mass of Fermionic Dark Matter from Dwarf Spheroidal Galaxies},
author = {James Alvey and Nashwan Sabti and Victoria Tiki and Diego Blas and Kyrylo Bondarenko and Alexey Boyarsky and Miguel Escudero and Malcolm Fairbairn and Matthew Orkney and Justin I. Read},
journal= {arXiv preprint arXiv:2010.03572},
year = {2021}
}
Comments
14 pages, 6 figures, 1 table. Matches version to appear in MNRAS - minor clarifications added