English

A unified approach to scaling solutions in a general cosmological background

High Energy Physics - Theory 2008-11-26 v2 Astrophysics General Relativity and Quantum Cosmology High Energy Physics - Phenomenology

Abstract

Our ignorance about the source of cosmic acceleration has stimulated study of a wide range of models and modifications to gravity. Cosmological scaling solutions in any of these theories are privileged because they represent natural backgrounds relevant to dark energy. We study scaling solutions in a generalized background H2ρTnH^2 \propto \rho_T^n in the presence of a scalar field \vp\vp and a barotropic perfect fluid, where HH is a Hubble rate and ρT\rho_T is a total energy density. The condition for the existence of scaling solutions restricts the form of Lagrangian to be p=X1/ng(Xenλ\vp)p=X^{1/n}g(Xe^{n\lambda \vp}), where X=gμνμ\vpν\vp/2X=-g^{\mu\nu} \partial_\mu \vp \partial_\nu \vp /2 and gg is an arbitrary function. This is very useful to find out scaling solutions and corresponding scalar-field potentials in a broad class of dark energy models including (coupled)-quintessence, ghost-type scalar field, tachyon and k-essence. We analytically derive the scalar-field equation of state w\vpw_\vp and the fractional density Ω\vp\Omega_\vp and apply it to a number of dark energy models.

Keywords

Cite

@article{arxiv.hep-th/0409212,
  title  = {A unified approach to scaling solutions in a general cosmological background},
  author = {Shinji Tsujikawa and M. Sami},
  journal= {arXiv preprint arXiv:hep-th/0409212},
  year   = {2008}
}

Comments

7 pages, no figures, references updated; final version to appear in PLB