Constraints on Bose-Einstein-condensed Axion Dark Matter from The HI Nearby Galaxy Survey data
arXiv:1406.1312 · doi:10.1103/PhysRevD.89.103512
Abstract
One of the leading candidates for dark matter is axion or axion-like particle in a form of Bose-Einstein condensate (BEC). In this paper, we present an analysis of 17 high-resolution galactic rotation curves from "The H{\footnotesize I} Nearby Galaxy Survey (THINGS)" data [F. Walter et al., Astron. J. 136, 2563 (2008)] in the context of the axionic Bose-Einstein condensed dark matter model. Assuming a repulsive two-body interaction, we solve the non-relativistic Gross-Pitaevskii equation for gravitationally trapped bosons in the Thomas-Fermi approximation. We obtain the maximum possible radius and the mass profile of a dilute axionic Bose-Einstein condensed gas cloud. A standard least- method is employed to find the best-fit values of the total mass of the axion BEC and its radius . The local mass density of BEC axion dark-matter is , which agrees with that presented by Beck [C. Beck, Phys. Rev. Lett. 111, 231801 (2013)]. The axion mass we obtain depends not only on the best-fit value of but also on the -wave scattering length (). The transition temperature of axion BEC on galactic scales is also estimated. Comparing the calculated with the ambient temperature of galaxies and galaxy clusters implies that fm. The corresponding axion mass is meV. We compare our results with others.
10 pages, 3 figures, 2 tables
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- Bose-Einstein Condensate dark matter models in the presence of baryonic matter and random confining potentials