Quantum-to-classical transition and imprints of continuous spontaneous localization in classical bouncing universes
D. Jaffino Stargen, V. Sreenath, L. Sriramkumar

TL;DR
This paper investigates the quantum-to-classical transition of primordial tensor perturbations in classical bouncing universes, focusing on quantum squeezing and the effects of continuous spontaneous localization on the power spectra.
Contribution
It is the first to analyze the quantum-to-classical transition in bouncing universes using Wigner functions and collapse models, extending beyond inflationary scenarios.
Findings
Limited quantum-to-classical studies in bouncing universes.
Wave function collapse influences tensor power spectra.
Squeezing analysis provides insights into classicalization process.
Abstract
The perturbations in the early universe are generated as a result of the interplay between quantum field theory and gravitation. Since these primordial perturbations lead to the anisotropies in the cosmic microwave background and eventually to the inhomogeneities in the Large Scale Structure (LSS), they provide a unique opportunity to probe issues which are fundamental to our understanding of quantum physics and gravitation. One such fundamental issue that remains to be satisfactorily addressed is the transition of the primordial perturbations from their quantum origins to the LSS which can be characterized completely in terms of classical quantities. Classical bouncing universes provide an alternative to the more conventional inflationary paradigm as they can help overcome the horizon problem in a fashion very similar to inflation. While the problem of the quantum-to-classical…
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