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Exact Scalar-Tensor Cosmological Models

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arxiv 1612.05446 v1 pith:Q52U4RAO submitted 2016-12-16 gr-qc astro-ph.COhep-th

classification gr-qcastro-ph.COhep-th
keywords gravitationalscalar-tensorcosmologicalfielduniverseacceleratingexactexpansion
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abstract

Scalar-tensor gravitational theories are important extensions of standard general relativity, which can explain both the initial inflationary evolution, as well as the late accelerating expansion of the Universe. In the present paper we investigate the cosmological solution of a scalar-tensor gravitational theory, in which the scalar field $\phi $ couples to the geometry via an arbitrary function $F(\phi $). The kinetic energy of the scalar field as well as its self-interaction potential $V(\phi )$ are also included in the gravitational action. By using a standard mathematical procedure, the Lie group approach, and Noether symmetry techniques, we obtain several exact solutions of the gravitational field equations describing the time evolutions of a flat Friedman-Robertson-Walker Universe in the framework of the scalar-tensor gravity. The obtained solutions can describe both accelerating and decelerating phases during the cosmological expansion of the Universe.

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  1. Corrections to inflationary models induced by non-minimal coupling between scalar field and curvature

    gr-qc 2026-07 conditional novelty 5.0 of 10

    Power-law non-minimal coupling F=(H/λ)^{2n} deforms inflationary potentials, shifts r and n_S while preserving n_T=-r/8 and GR-like reheating, enabling r(1-n_S) classification of models against Planck/ACT data.

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