Late-time dynamics of dark energy EoS in symmetric teleparallel gravity
arXiv:2410.18568 · doi:10.1142/S0217751X2550099X
Abstract
In the symmetric teleparallel gravity framework, we study the cosmic dynamics of the universe with dark energy equation of state (EoS) parameter having non-linear forms. The non-metricity scalar induced by the dark energy EoS parameter evolves with time and, explains the physically reasonable transiting universe evolution in a consistent way. A comparative study has been presented to describe the ability of these models to fit the observational data. By using the Bayesian methods, we constrain the model parameters with the supernovae Ia (SneIa) and expansion rate data. We show that the expansion rate solutions may consistently describe the universe evolution based on cosmological indicators such as the effective EoS parameter, energy density, pressure, current age and the statefinder diagnostic. One may either have the quintom scenario or the future deceleration in these models subjected to the observational constraints.
Accepted Manuscript, 19 pages, 9 figures
References in corpus (12)
- Dynamics of dark energy
- Unified cosmic history in modified gravity: from F(R) theory to Lorentz non-invariant models
- f(R,T) gravity
- Raising the bar: new constraints on the Hubble parameter with cosmic chronometers at z2
- Improved Dark Energy Constraints from ~100 New CfA Supernova Type Ia Light Curves
- f(R,L_m) gravity
- Comparing Equivalent Gravities: common features and differences
- Observational constraints on the deceleration parameter in a tilted universe
- Cosmic age, Statefinder and diagnostics in the decaying vacuum cosmology
- Transit String Dark Energy Models in Gravity
- Phase-space analysis of the viscous fluid cosmological models in the coincident gravity
- Quintessence-like features in the late-time cosmological evolution of symmetric teleparallel gravity