Quintessence-like features in the late-time cosmological evolution of symmetric teleparallel gravity
arXiv:2308.15101 · doi:10.1016/j.cjph.2023.07.003
Abstract
In this study, we investigate the cosmological history within the framework of modified gravity, which proposes an alternative theory of gravity where the gravitational force is described by a non-metricity scalar. By employing a parametrization scheme for the Hubble parameter, we obtain the exact solution to the field equations in cosmology. To constrain our model, we utilize external datasets, including 57 data points from the Hubble dataset, 1048 data points from the SN dataset, and six data points from the BAO dataset. This enables us to determine the best-fit values for the model parameters involved in the parameterization scheme. We analyze the cosmic evolution of various cosmological parameters, including the deceleration parameter, which exhibits the expected behavior in late-time cosmology and changes its signature with redshift. Further, we present the evolution of energy density, EoS parameter, and other geometrical parameters with respect to redshift. Furthermore, we discuss several cosmological tests and diagnostic analyses. Our findings demonstrate that the late-time cosmic evolution can be adequately described without the need for dark energy by employing a parametrization scheme in modified gravity.
Chinese Journal of Physics published version
References in corpus (11)
- Two new diagnostics of dark energy
- The teleparallel equivalent of general relativity
- Thermodynamic interpretation of the generalized gravity models with geometry - matter coupling
- Cosmography of f(R) gravity
- Three thermodynamically-based parametrizations of the deceleration parameter
- Observational constraints on two cosmological models of theory
- Cosmological implications of modified gravity induced by quantum metric fluctuations
- Late-time acceleration in gravity: Analysis and constraints in an anisotropic background
- Connecting early and late universe by gravity
- Accelerating Universe scenario in anisotropic cosmology
- An Accelerating Cosmological Model from a Parametrization of Hubble Parameter