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From a Bounce to the Dark Energy Era with $F(R)$ Gravity

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arxiv 2009.09947 v1 pith:KLJPUJBL submitted 2020-09-21 gr-qc

classification gr-qc
keywords gravitybounceuniversedarkdominatedenergyepochmatter
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abstract

In this work we consider a cosmological scenario in which the Universe contracts initially having a bouncing-like behavior, and accordingly after it bounces off, it decelerates following a matter dominated like evolution and at very large positive times it undergoes through an accelerating stage. Our aim is to study such evolution in the context of $F(R)$ gravity theory, and confront quantitatively the model with the recent observations. Using several reconstruction techniques, we analytically obtain the form of $F(R)$ gravity in two extreme stages of the universe, particularly near the bounce and at the late time era respectively. With such analytic results and in addition by employing appropriate boundary conditions, we numerically solve the $F(R)$ gravitational equation to determine the form of the $F(R)$ for a wide range of values of the cosmic time. The numerically solved $F(R)$ gravity realizes an unification of certain cosmological epochs of the universe, in particular, from a non-singular bounce to a matter dominated epoch and from the matter dominated to a late time dark energy epoch. Correspondingly, the Hubble parameter and the effective equation of state parameter of the Universe are found and several qualitative features of the model are discussed. The Hubble radius goes to zero asymptotically in both sides of the bounce, which leads to the generation of the primordial curvature perturbation modes near the bouncing point. Correspondingly, we calculate the scalar and tensor perturbations power spectra near the bouncing point, and accordingly we determine the observable quantities like the spectral index of the scalar curvature perturbations, the tensor-to-scalar ratio, and as a result, we directly confront the present model with the latest Planck observations. Furthermore the $F(R)$ gravity dark energy epoch is confronted with the Sne-Ia+BAO+H(z)+CMB data.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Evidence for non-cold dark matter from DESI DR2 measurements

    astro-ph.CO 2025-04 reject novelty 5.0 of 10

    DESI BAO plus DES-Y5 supernovae favor a slightly negative dark matter equation of state at 2.4 sigma, but combining with Planck moves the best fit to a positive value, exposing a dataset-dependent tension.

  2. Modeling a Non-Singular Universe with Late-Time Acceleration through a Novel Inhomogeneous Barotropic Equation of State

    gr-qc 2025-04 reject novelty 3.0 of 10

    A barotropic fluid with pressure p=ρ[ζ0+ζ1(t-t0)^-2n] yields an exact non-singular bouncing FLRW solution with late-time acceleration.

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