Classical and quantum massive cosmology for the open FRW universe
Babak Vakili, Nima Khosravi

TL;DR
This paper explores classical and quantum models of an open FRW universe within nonlinear massive gravity, revealing potential quantum-induced bounces that could resolve classical singularities.
Contribution
It demonstrates that in nonlinear massive gravity, open FRW models admit solutions with a cosmological constant-like mass term and shows quantum effects can replace classical singularities with bounces.
Findings
Classical solutions include contracting and expanding branches separated by a forbidden region.
Quantum wave functions suggest the possibility of a universe bounce replacing singularities.
Bohmian analysis shows the mass term influences quantum trajectories and potential.
Abstract
In an open Friedmann-Robertson-Walker (FRW) space background, we study the classical and quantum cosmological models in the framework of the recently proposed nonlinear massive gravity theory. Although the constraints which are present in this theory prevent it from admitting the flat and closed FRW models as its cosmological solutions, for the open FRW universe, it is not the case. We have shown that, either in the absence of matter or in the presence of a perfect fluid, the classical field equations of such a theory adopt physical solutions for the open FRW model, in which the mass term shows itself as a cosmological constant. These classical solutions consist of two distinguishable branches: One is a contacting universe which tends to a future singularity with zero size, while another is an expanding universe having a past singularity from which it begins its evolution. A classically…
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