Quantum Big Bounce of the isotropic Universe via a relational time
Eleonora Giovannetti, Fabio Maione, Giovanni Montani

TL;DR
This paper investigates the quantum dynamics of an isotropic universe using a scalar field as relational time, revealing a Big Bounce scenario through transition amplitudes between collapsing and expanding phases.
Contribution
It introduces a detailed analysis of the quantum transition probabilities in a cosmological model with and without potential, demonstrating a quantum Big Bounce phenomenon.
Findings
Transition probability peaks when in-going and out-going momenta match.
Similar results obtained in standard and polymer quantization.
Supports the Big Bounce as a quantum cosmological event.
Abstract
We analyze the canonical quantum dynamics of the isotropic Universe in a metric approach by adopting a self-interacting scalar field as relational time. When the potential term is absent we are able to associate the the expanding and collapsing dynamics of the Universe with the positive and negative frequency modes that emerge in the Wheeler-DeWitt equation. On the other side, when the potential term is present a non-zero transition amplitude from positive to negative frequency states arises, as in the standard relativistic scattering theory below the particle creation threshold. In particular, we are able to compute the transition probability for an expanding Universe that emerges from a collapsing regime both in the standard quantization procedure and in the polymer formulation. The probability distribution results similar in the two cases and its maximum takes place when the mean…
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Taxonomy
TopicsQuantum, superfluid, helium dynamics · Quantum Mechanics and Applications · Quantum Electrodynamics and Casimir Effect
