English

Dark energy scenario consistent with GW170817 in theories beyond Horndeski gravity

General Relativity and Quantum Cosmology 2018-05-03 v2 Cosmology and Nongalactic Astrophysics High Energy Physics - Phenomenology High Energy Physics - Theory

Abstract

The Gleyzes-Langlois-Piazza-Vernizzi (GLPV) theories up to quartic order are the general scheme of scalar-tensor theories allowing the possibility for realizing the tensor propagation speed ctc_t equivalent to 1 on the isotropic cosmological background. We propose a dark energy model in which the late-time cosmic acceleration occurs by a simple k-essence Lagrangian analogous to the ghost condensate with cubic and quartic Galileons in the framework of GLPV theories. We show that a wide variety of the variation of the dark energy equation of state wDEw_{\rm DE} including the entry to the region wDE<1w_{\rm DE}<-1 can be realized without violating conditions for the absence of ghosts and Laplacian instabilities. The approach to the tracker equation of state wDE=2w_{\rm DE}=-2 during the matter era, which is disfavored by observational data, can be avoided by the existence of a quadratic k-essence Lagrangian X2X^2. We study the evolution of nonrelativistic matter perturbations for the model ct2=1c_t^2=1 and show that the two quantities μ\mu and Σ\Sigma, which are related to the Newtonian and weak lensing gravitational potentials respectively, are practically equivalent to each other, such that μΣ>1\mu \simeq \Sigma>1. For the case in which the deviation of wDEw_{\rm DE} from 1-1 is significant at a later cosmological epoch, the values of μ\mu and Σ\Sigma tend to be larger at low redshifts. We also find that our dark energy model can be consistent with the bounds on the deviation parameter αH\alpha_{\rm H} from Horndeski theories arising from the modification of gravitational law inside massive objects.

Keywords

Cite

@article{arxiv.1802.02728,
  title  = {Dark energy scenario consistent with GW170817 in theories beyond Horndeski gravity},
  author = {Ryotaro Kase and Shinji Tsujikawa},
  journal= {arXiv preprint arXiv:1802.02728},
  year   = {2018}
}

Comments

23 pages, 7 figures, published version