Quantum gravity and inflation

Stephon Alexander, Justin Malecki, and Lee Smolin
Phys. Rev. D 70, 044025 – Published 20 August 2004
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Abstract

Using the Ashtekar-Sen variables of loop quantum gravity, a new class of exact solutions to the equations of quantum cosmology is found for gravity coupled to a scalar field that corresponds to inflating universes. The scalar field, which has an arbitrary potential, is treated as a time variable, reducing the Hamiltonian constraint to a time-dependent Schrödinger equation. When reduced to the homogeneous and isotropic case, this is solved exactly by a set of solutions that extend the Kodama state, taking into account the time dependence of the vacuum energy. Each quantum state corresponds to a classical solution of the Hamiltonian-Jacobi equation. The study of the latter shows evidence for an attractor, suggesting a universality in the phenomena of inflation. Finally, wave packets can be constructed by superposing solutions with different ratios of kinetic to potential scalar field energy, resolving, at least in this case, the issue of normalizability of the Kodama state.

  • Received 22 October 2003

DOI:https://doi.org/10.1103/PhysRevD.70.044025

©2004 American Physical Society

Authors & Affiliations

Stephon Alexander

  • Stanford Linear Accelerator Center and ITP Stanford University, Stanford, California 94309, USA

Justin Malecki

  • Department of Physics, University of Waterloo, Ontario, Canada
  • Perimeter Institute for Theoretical Physics, Waterloo, Canada

Lee Smolin

  • Perimeter Institute for Theoretical Physics, Waterloo, Canada

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Issue

Vol. 70, Iss. 4 — 15 August 2004

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