English

Investigating the compatibility of exact solutions in Weyl-type $f(Q,T)$ gravity with observational data

Cosmology and Nongalactic Astrophysics 2024-01-23 v1

Abstract

In this study, we investigate the dynamics of the Universe during the observed late-time acceleration phase within the framework of the Weyl-type f(Q,T)f(Q,T) theory. Specifically, we consider a well-motivated model with the functional form f(Q,T)=αQ+β6κ2Tf(Q,T)=\alpha Q+\frac{\beta }{6\kappa ^2}T, where QQ represents the scalar of non-metricity and TT denotes the trace of the energy-momentum tensor. In this context, the non-metricity QμαβQ_{\mu\alpha\beta} of the space-time is established by the vector field wμw_\mu. The parameters α\alpha and β\beta govern the gravitational field and its interaction with the matter content of the Universe. By considering the case of dust matter, we obtain exact solutions for the field equations and observe that the Hubble parameter H(z)H(z) follows a power-law behavior with respect to redshift zz. To constrain the model parameters, we analyze various datasets including the HubbleHubble, PantheonPantheon datasets, and their combination. Our results indicate that the Weyl-type f(Q,T)f(Q,T) theory offers a viable alternative to explain the observed late-time acceleration of the Universe avoiding the use of dark energy.

Keywords

Cite

@article{arxiv.2401.04500,
  title  = {Investigating the compatibility of exact solutions in Weyl-type $f(Q,T)$ gravity with observational data},
  author = {M. Koussour and S. Myrzakulova and N. Myrzakulov},
  journal= {arXiv preprint arXiv:2401.04500},
  year   = {2024}
}

Comments

Special Issue Celebrating the 20th Anniversary of IJGMMP