English

Big Bang Nucleosynthesis and Entropy Evolution in $f(R,T)$ Gravity

General Physics 2020-04-10 v1

Abstract

The present article is devoted to constrain the model parameter χ\chi for the f(R,T)=R+χTf(R,T)= R + \chi T gravity model by employing the constraints coming from big bang nucleosynthesis. We solve the field equations and constrain χ\chi in the range 0.14κ2χ0.84κ2-0.14 \kappa^{2} \leq \chi \leq 0.84 \kappa^{2} (where κ2=8πGc4\kappa^{2} = \frac{8 \pi G}{c^{4}}) from the primordial abundances of light elements such as helium-4, deuterium and lithium-7. We found the abundances of helium-4 and deuterium agrees with theoretical predictions, however the lithium problem persists for the f(R,T)f(R,T) gravity model. We also investigate the evolution of entropy for the constrained parameter space of χ\chi for the radiation and dust universe. We report that entropy is constant when χ=0\chi = 0 for the radiation dominated universe, whereas for the dust universe, entropy increases with time. We finally use the constraints to show that χ\chi has negligible influence on the cold dark matter annihilation cross section.

Keywords

Cite

@article{arxiv.2004.04684,
  title  = {Big Bang Nucleosynthesis and Entropy Evolution in $f(R,T)$ Gravity},
  author = {Snehasish Bhattacharjee and P. K. Sahoo},
  journal= {arXiv preprint arXiv:2004.04684},
  year   = {2020}
}

Comments

8 pages, 3 figures, Accepted version at European Physical Journal Plus

R2 v1 2026-06-23T14:45:56.298Z