Cosmological implications of modified gravity induced by quantum metric fluctuations
Xing Liu, Tiberiu Harko, Shi-Dong Liang

TL;DR
This paper explores how quantum metric fluctuations induce modified gravity models with nonminimal coupling, affecting cosmological evolution and potentially explaining accelerated expansion through analytical and numerical analysis.
Contribution
It introduces a framework for deriving modified gravity models from quantum metric fluctuations, including new cosmological models with matter creation and diverse expansion behaviors.
Findings
Models exhibit both accelerating and decelerating cosmological phases.
Non-zero divergence of energy-momentum tensor indicates matter creation.
Quantum fluctuations lead to rich cosmological dynamics.
Abstract
We investigate the cosmological implications of modified gravities induced by the quantum fluctuations of the gravitational metric. If the metric can be decomposed as the sum of the classical and of a fluctuating part, of quantum origin, then the corresponding Einstein quantum gravity generates at the classical level modified gravity models with a nonminimal coupling between geometry and matter. As a first step in our study, after assuming that the expectation value of the quantum correction can be generally expressed in terms of an arbitrary second order tensor constructed from the metric and from the thermodynamic quantities characterizing the matter content of the Universe, we derive the (classical) gravitational field equations in their general form. We analyze in detail the cosmological models obtained by assuming that the quantum correction tensor is given by the coupling of a…
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