Dynamics of primordial fields in quantum cosmological spacetimes
Przemys{\l}aw Ma{\l}kiewicz, Artur Miroszewski

TL;DR
This paper explores how quantum uncertainties and a big bounce in early universe models influence primordial gravitational waves, providing a detailed quantum treatment beyond semiclassical approximations.
Contribution
It introduces a quantum cosmological model with gravitational waves, deriving new equations that incorporate quantum effects like the bounce and uncertainties, extending classical wave propagation analysis.
Findings
Quantum effects modify the primordial gravitational wave spectrum.
The bounce replaces the classical big bang singularity.
Quantum uncertainties affect the amplitude of gravitational waves.
Abstract
Quantum cosmological models are commonly described by means of semiclassical approximations in which a smooth evolution of the expectation values of elementary geometry operators replaces the classical and singular dynamics. The advantage of such descriptions is that they are relatively simple and display the classical behavior for large universes. However, they may smooth out an important inner structure and to include it a more detailed treatment is needed. The purpose of the present work is to investigate quantum uncertainty in the basic background variables and its influence on primordial gravitational waves. To this end we quantize a model of the Friedmann-Lemaitre-Robertson-Walker universe filled with a linear barotropic cosmological fluid and with gravitational waves. We carefully derive the dynamical equations for the perturbations in quantum spacetime. The quantization yields…
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