English

Bouncing cosmologies and stability analysis in symmetric teleparallel $f(Q)$ gravity

Cosmology and Nongalactic Astrophysics 2024-09-17 v1

Abstract

This paper is devoted to examining cosmological bouncing scenarios in the framework of the recently proposed symmetric teleparallel gravity (or f(Q)f(Q) gravity), where the non-metricity scalar QQ represents the gravitational interaction. We assume an f(Q)f(Q) model in the form of f(Q)=αQnf(Q)=\alpha Q^n, where α\alpha and nn are free model parameters. To obtain a bouncing universe, we consider a special form of the scale factor a(t)a(t) in terms of cosmic time, specifically a(t)=(1+λt2)1/3a(t) = (1+\lambda t^2)^{1/3}, where λ\lambda is an arbitrary constant. We derive the field equations for the flat FLRW universe and obtain the corresponding exact solution. We investigate the physical behavior of various cosmological parameters such as the deceleration parameter, pressure, and equation of state (EoS) parameter with the energy conditions for our bounce cosmological model. Furthermore, we investigate the behavior of the perturbation terms δm(t)\delta_m(t) and δ(t)\delta(t) with respect to cosmic time tt using the scalar perturbation approach. We found that although the model exhibits unstable behavior at the beginning for a brief period, it shows mostly stable behavior for most of the time. Finally, we conclude that the EoS parameter crosses the quintom line ω=1\omega=-1 in the vicinity of the bouncing point t=0t=0, which confirms the success of our bounce cosmological model.

Keywords

Cite

@article{arxiv.2409.01040,
  title  = {Bouncing cosmologies and stability analysis in symmetric teleparallel $f(Q)$ gravity},
  author = {M. Koussour and N. Myrzakulov},
  journal= {arXiv preprint arXiv:2409.01040},
  year   = {2024}
}

Comments

The European Physical Journal Plus accepted version

R2 v1 2026-06-28T18:31:06.602Z