Quantum states of the bouncing universe

Jean Pierre Gazeau, Jakub Mielczarek, and Włodzimierz Piechocki
Phys. Rev. D 87, 123508 – Published 10 June 2013

Abstract

In this paper we study quantum dynamics of the bouncing cosmological model. We focus on the model of the flat Friedmann-Robertson-Walker universe with a free scalar field. The bouncing behavior, which replaces the classical singularity, appears due to the modification of general relativity using the methods of loop quantum cosmology. We show that there exists a unitary transformation that enables one to describe the system as a free particle with a Hamiltonian equal to the canonical momentum. We examine properties of the various quantum states of the universe: the boxcar state, the standard coherent state, and the soliton-like state, as well as Schrödinger’s cat states constructed from these states. Characteristics of the states—such as quantum moments and Wigner functions—are investigated. We show that each of these states have, for some range of parameters, a proper semiclassical limit fulfilling the correspondence principle. The decoherence of the superposition of two universes is described and possible interpretations in terms of triad orientation and the Belinsky-Khalatnikov-Lifshitz conjecture are given. We also examine negative-part sectors of the Wigner functions for the considered states. Their respective areas and localizations in the phase space feature an adequate estimate of nonclassicality. In particular, we show that regions where the Wigner function for the Glauber coherent cat state assumes its negative values have area equal to one fourth of the Planck constant. Based on the examined examples, we also conjecture that regions with negative values for the Wigner function are never smaller than one fourth of the Planck constant for states satisfying the uncertainty principle.

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  • Received 16 March 2013

DOI:https://doi.org/10.1103/PhysRevD.87.123508

© 2013 American Physical Society

Authors & Affiliations

Jean Pierre Gazeau1,2, Jakub Mielczarek3,4, and Włodzimierz Piechocki3

  • 1Laboratoire APC, Université Paris Diderot, Sorbonne Paris Cite, 75205 Paris, France
  • 2Centro Brasileiro de Pesquisas Físicas, Rio de Janeiro, 22290-180 Rio de Janeiro, Brazil
  • 3Department of Fundamental Research, National Centre for Nuclear Research, Hoża 69, 00-681 Warsaw, Poland
  • 4Institute of Physics, Jagiellonian University, Reymonta 4, 30-059 Cracow, Poland

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Issue

Vol. 87, Iss. 12 — 15 June 2013

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