Quantum Cosmology of $f(R,T)$ gravity
Min-Xing Xu, Tiberiu Harko, Shi-Dong Liang

TL;DR
This paper develops a quantum cosmology framework for $f(R,T)$ gravity, deriving the Wheeler-de Witt equation, analyzing specific models, and exploring quantum time and energy levels of the Universe.
Contribution
It formulates the Wheeler-de Witt equation for $f(R,T)$ gravity, introduces a quantum time concept, and applies perturbation methods to analyze the quantum properties of the Universe.
Findings
Derived the general Hamiltonian and Wheeler-de Witt equation for $f(R,T)$ gravity.
Identified a time parameter enabling Schrödinger-like quantum description.
Calculated energy levels of the Universe using perturbation theory.
Abstract
Modified gravity theories have the potential of explaining the recent acceleration of the Universe without resorting to the mysterious concept of dark energy. In particular, it has been pointed out that matter-geometry coupling may be responsible for the recent cosmological dynamics of the Universe, and matter itself may play a more fundamental role in the description of the gravitational processes that usually assumed. We study the quantum cosmology of the gravity theory, in which the effective Lagrangian of the gravitational field is given by an arbitrary function of the Ricci scalar, and the trace of the matter energy-momentum tensor, respectively. For the background geometry we adopt the Friedmann--Robertson--Walker metric, and we assume that matter content of the Universe consists of a perfect fluid. We obtain the general form of the gravitational Hamiltonian, of the…
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