4.7 Article

Scalar-field dark energy nonminimally and kinetically coupled to dark matter

Journal

PHYSICAL REVIEW D
Volume 101, Issue 6, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevD.101.063511

Keywords

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Funding

  1. JSPS [19K03854, 17K14297]
  2. MEXT KAKENHI [15H05890]
  3. Grants-in-Aid for Scientific Research [19K03854] Funding Source: KAKEN

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We provide a general framework for studying the dark energy cosmology in which a scalar field phi is nonminimally and kinetically coupled to cold dark matter (CDM). The scalar-graviton sector is described by the action of Horndeski theories with the speed of gravitational waves equivalent to that of light, whereas CDM is treated as a perfect fluid given by a Schutz-Sorkin action. We consider two interacting Lagrangians of the forms f(1 )(phi, X)rho(c) (n(c)) and f(2) (n(c), phi, X)J(c)(mu)partial derivative(mu)phi, where X = partial derivative(mu)phi(mu)phi/2, rho(c) and n(c) are the energy density and number density of CDM respectively, and J(c)(mu) is a vector field related to the CDM four velocity. We derive the scalar perturbation equations of motion without choosing any special gauges and identify conditions for the absence of ghosts and Laplacian instabilities on scales deep inside the sound horizon. Applying a quasistatic approximation in a gauge-invariant manner, we also obtain the effective gravitational couplings felt by CDM and baryons for the modes relevant to the linear growth of large-scale structures. In particular, the n(c) dependence in the coupling f(2) gives rise to an interesting possibility for realizing the gravitational coupling with CDM weaker than the Newton gravitational constant G.

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