Quantum stability of a w<1 phase of cosmic acceleration

E. O. Kahya and V. K. Onemli
Phys. Rev. D 76, 043512 – Published 13 August 2007

Abstract

We consider a massless, minimally coupled scalar with a quartic self-interaction which is released in Bunch-Davies vacuum in the locally de Sitter background of an inflating universe. It was shown, in this system, that quantum effects can induce a temporary phase of superacceleration, causing a violation of the weak energy condition on cosmological scales. In this paper, we investigate the system’s stability by studying the behavior of linearized perturbations in the quantum-corrected effective field equation at one- and two-loop order. We show that the amplitude of the quantum-corrected mode function is reduced in time, starting from its initial classical (Bunch-Davies) value. This implies that the linear perturbations do not grow; hence, the model is stable. The decrease in the amplitude is in agreement with the system developing a positive (growing) mass squared due to quantum processes. The induced mass, however, remains perturbatively small and does not go tachyonic. This ensures the stability.

  • Figure
  • Figure
  • Received 18 January 2007

DOI:https://doi.org/10.1103/PhysRevD.76.043512

©2007 American Physical Society

Authors & Affiliations

E. O. Kahya1,* and V. K. Onemli2,†

  • 1Department of Physics, University of Florida, Gainesville, Florida 32611, USA
  • 2Department of Physics, University of Crete, Heraklion, GR-76003, Greece

  • *emre@phys.ufl.edu
  • onemli@physics.uoc.gr

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Issue

Vol. 76, Iss. 4 — 15 August 2007

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