Published December 15, 2005 | Version v1
Journal article

Long-wavelength metric backreactions in slow-roll inflation

  • 1. Department of Physics and Astronomy, University of British Columbia, 6224 Agricultural Road Vancouver, B.C. V6T 1Z1 (Canada)
  • 2. Canadian Institute for Advanced Research, Cosmology and Gravitation Program (Canada)

Description

We examine the importance of second order corrections to linearized cosmological perturbation theory in an inflationary background, taken to be a spatially flat FRW spacetime. The full second order problem is solved in the sense that we evaluate the effect of the superhorizon second order corrections on the inhomogeneous and homogeneous modes of the linearized fluctuations. These second order corrections enter in the form of a cumulative contribution from all of their Fourier modes. In order to quantify their physical significance we study their effective equation of state by looking at the perturbed energy density and isotropic pressure to second order. We define the energy density (isotropic pressure) in terms of the (averaged) eigenvalues associated with timelike (spacelike) eigenvectors of a total stress energy for the metric and matter fluctuations. Our work suggests that for many parameters of slow-roll inflation, the second order contributions to the energy density and pressures may dominate over the first order effects for the case of super-Hubble evolution. These results hold in our choice of first and second order coordinate conditions; however, we also argue that other 'reasonable' coordinate conditions do not alter the relative importance of the second order terms. We find that these second order contributions approximately take the form of a cosmological constant in this coordinate gauge, as found by others using effective methods

Additional details

Publishing Information

Journal Title
Physical Review. D, Particles Fields
Journal Volume
72
Journal Issue
12
Journal Page Range
p. 123510-123510.19
ISSN
0556-2821
CODEN
PRVDAQ

Optional Information

Notes
(c) 2005 The American Physical Society