Observational constraints and dynamical analysis of Kaniadakis horizon-entropy cosmology
arXiv:2112.04615 · doi:10.1093/mnras/stac795
Abstract
We study the scenario of Kanadiakis horizon entropy cosmology which arises from the application of the gravity-thermodynamics conjecture using the Kaniadakis modified entropy. The resulting modified Friedmann equations contain extra terms that constitute an effective dark energy sector. We use data from Cosmic chronometers, Supernova Type Ia, HII galaxies, Strong lensing systems, and Baryon acoustic oscillations observations and we apply a Bayesian Markov Chain Monte Carlo analysis to construct the likelihood contours for the model parameters. We find that the Kaniadakis parameter is constrained around 0, namely, around the value where the standard Bekenstein-Hawking is recovered. Concerning the normalized Hubble parameter, we find , a result that is independently verified by applying the diagnostic and, thus, we conclude that the scenario at hand can alleviate the tension problem. Regarding the transition redshift, the reconstruction of the cosmographic parameters gives . Furthermore, we apply the AICc, BIC and DIC information criteria and we find that in most datasets the scenario is statistical equivalent to CDM one. Moreover, we examine the Big Bang Nucleosynthesis (BBN) and we show that the scenario satisfies the corresponding requirements. Additionally, we perform a phase-space analysis, and we show that the Universe past attractor is the matter-dominated epoch, while at late times the Universe results in the dark-energy-dominated solution. Finally, we show that Kanadiakis horizon entropy cosmology accepts heteroclinic sequences, but it cannot exhibit bounce and turnaround solutions.
Version accepted in MNRAS
References in corpus (25)
- Dynamics of dark energy
- Large Magellanic Cloud Cepheid Standards Provide a 1% Foundation for the Determination of the Hubble Constant and Stronger Evidence for Physics Beyond LambdaCDM
- Cosmic Distances Calibrated to 1% Precision with Gaia EDR3 Parallaxes and Hubble Space Telescope Photometry of 75 Milky Way Cepheids Confirm Tension with LambdaCDM
- Thermodynamic Behavior of Friedmann Equation at Apparent Horizon of FRW Universe
- Unified First Law and Thermodynamics of Apparent Horizon in FRW Universe
- Friedmann Equations of FRW Universe in Scalar-tensor Gravity, f(R) Gravity and First Law of Thermodynamics
- Thermodynamic route to Field equations in Lanczos-Lovelock Gravity
- Hawking Radiation of Apparent Horizon in a FRW Universe
- Thermodynamical Properties of Apparent Horizon in Warped DGP Braneworld
- Big Bang Nucleosynthesis as a Probe of New Physics
- Measuring the effective complexity of cosmological models
- Thermodynamics of apparent horizon and modified Friedman equations
- Modified cosmology through spacetime thermodynamics and Barrow horizon entropy
- Entropic Corrections to Friedmann Equations
- Generalized entropies and corresponding holographic dark energy models
- The generalized second law of thermodynamics in Horava-Lifshitz cosmology
- Thermodynamical First Laws of Black Holes in Quadratically-Extended Gravities
- Bounce and cyclic cosmology in extended nonlinear massive gravity
- Modified cosmology through Kaniadakis horizon entropy
- Independent cosmological constraints from high-z HII galaxies: new results from VLT-KMOS data
- Barrow Entropy Cosmology: an observational approach with a hint of stability analysis
- Cyclic Universes from General Collisionless Braneworld Models
- Scalar and Tensor Perturbations in DHOST Bounce Cosmology
- Cosmic acceleration in unimodular gravity
- Constraints and cosmography of CDM in presence of viscosity