English

Effective field theory of modified gravity with two scalar fields: dark energy and dark matter

High Energy Physics - Theory 2014-04-01 v2 Cosmology and Nongalactic Astrophysics General Relativity and Quantum Cosmology High Energy Physics - Phenomenology

Abstract

We present a framework for discussing the cosmology of dark energy and dark matter based on two scalar degrees of freedom. An effective field theory of cosmological perturbations is employed. A unitary gauge choice renders the dark energy field into the gravitational sector, for which we adopt a generic Lagrangian depending on three-dimensional geometrical scalar quantities arising in the ADM decomposition. We add to this dark-energy associated gravitational sector a scalar field ϕ\phi and its kinetic energy XX as dark matter variables. Compared to the single-field case, we find that there are additional conditions to obey in order to keep the equations of motion for linear cosmological perturbations at second order. For such a second-order multi-field theory we derive conditions under which ghosts and Laplacian instabilities of the scalar and tensor perturbations are absent. We apply our general results to models with dark energy emerging in the framework of the Horndeski theory and dark matter described by a k-essence Lagrangian P(ϕ,X)P(\phi,X). We derive the effective coupling between such an imperfect-fluid dark matter and the gravitational sector under the quasi-static approximation on sub-horizon scales. By considering the purely kinetic Lagrangian P(X)P(X) as a particular case, the formalism is verified to reproduce the gravitational coupling of a perfect-fluid dark matter.

Keywords

Cite

@article{arxiv.1402.0553,
  title  = {Effective field theory of modified gravity with two scalar fields: dark energy and dark matter},
  author = {László Á. Gergely and Shinji Tsujikawa},
  journal= {arXiv preprint arXiv:1402.0553},
  year   = {2014}
}

Comments

20 pages, no figures