Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
10725591 | Physics Letters B | 2011 | 6 Pages |
Abstract
We study the viability of a complex scalar field Ï with self-interacting potential V=m0Ï/2|Ï|2+h|Ï|4 as dark matter. The scalar field is produced at reheating through the decay of the inflaton field and then, due to the self-interaction, a Bose-Einstein condensate of Ï particles forms. The condensate represents dark matter in that model. We analyze the cosmological evolution of the model, stressing how, due to the presence of the self-interaction, the model naturally admits dark matter domination at late times, thus avoiding any fine tuning on the energy density of the scalar field at early times. Finally we give a lower bound for the size of dark matter halos at present time and we show that our model is compatible with dark matter halos greater than 0.1 kpc and with BBN and CMB bounds on the effective number of extra neutrinos Îνeff. Therefore, the model is viable and for hâ10â4-10â12 one obtains a mass mÏâm0Ïâ1-10â2 eV for dark matter particles from radiation-matter equality epoch to present time, but at temperatures Tγâ«10 eV, where Tγ is the photons temperature, thermal corrections to m0Ï due to the self-coupling h are dominant.
Keywords
Related Topics
Physical Sciences and Engineering
Physics and Astronomy
Nuclear and High Energy Physics
Authors
F. Briscese,