Self-accelerating the normal DGP branch
Abstract
We propose a generalised induced gravity brane-world model where the brane action contains an arbitrary f(R) term, R being the scalar curvature of the brane. We show that the effect of the f(R)term on the dynamics of a homogeneous and isotropic brane is twofold: (i) an evolving induced gravity parameter and (ii) a shift on the energy density of the brane. This new shift term, which is absent on the Dvali, Gabadadze and Porrati (DGP) model, plays a crucial role to self-accelerate the generalised normal DGP branch of our model. We analyse as well the stability of de Sitter self-accelerating solutions under homogeneous perturbations and compare our results with the standard 4-dimensional one. Finally, we obtain power law solutions which either correspond to conventional acceleration or super-acceleration of the brane. In the latter case, no phantom matter is invoked on the brane nor in the bulk.
Keywords
Cite
@article{arxiv.0905.1962,
title = {Self-accelerating the normal DGP branch},
author = {Mariam Bouhmadi-Lopez},
journal= {arXiv preprint arXiv:0905.1962},
year = {2009}
}
Comments
9 pages, 2 figures, RevTeX 4. References added. Version to appear in JCAP