English

How clustering dark energy affects matter perturbations

Cosmology and Nongalactic Astrophysics 2015-08-04 v2

Abstract

The rate of structure formation in the Universe is different in homogeneous and clustered dark energy models. The degree of dark energy clustering depends on the magnitude of its effective sound speed ceff2c^{2}_{\rm eff} and for ceff=0c_{\rm eff}=0 dark energy clusters in a similar fashion to dark matter while for ceff=1c_{\rm eff}=1 it stays (approximately) homogeneous. In this paper we consider two distinct equations of state for the dark energy component, wd=constw_{\rm d}=const and wd=w0+w1(z1+z)w_{\rm d}=w_0+w_1\left(\frac{z}{1+z}\right) with ceffc_{\rm eff} as a free parameter and we try to constrain the dark energy effective sound speed using current available data including SnIa, Baryon Acoustic Oscillation, CMB shift parameter ({\em Planck} and {\em WMAP}), Hubble parameter, Big Bang Nucleosynthesis and the growth rate of structures fσ8(z)f\sigma_{8}(z). At first we derive the most general form of the equations governing dark matter and dark energy clustering under the assumption that ceff=constc_{\rm eff}=const. Finally, performing an overall likelihood analysis we find that the likelihood function peaks at ceff=0c_{\rm eff}=0, however the dark energy sound speed is degenerate with respect to the cosmological parameters, namely Ωm\Omega_{\rm m} and wdw_{\rm d}.

Keywords

Cite

@article{arxiv.1504.01262,
  title  = {How clustering dark energy affects matter perturbations},
  author = {A. Mehrabi and S. Basilakos and F. Pace},
  journal= {arXiv preprint arXiv:1504.01262},
  year   = {2015}
}

Comments

This paper has been accepted for publication in MNRAS 452, 2015, 2930-2939

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