Published October 13, 2011 | Version v1
Journal article

Early dark energy from zero-point quantum fluctuations

  • 1. Departement de Physique Theorique and Center for Astroparticle Physics, Universite de Geneve, 24 quai Ansermet, CH-1211 Geneve 4 (Switzerland)

Description

We examine a cosmological model with a dark energy density of the form ρDE(t)=ρX(t)+ρZ(t), where ρX is the component that accelerates the Hubble expansion at late times and ρZ(t) is an extra contribution proportional to H2(t). This form of ρZ(t) follows from the recent proposal that the contribution of zero-point fluctuations of quantum fields to the total energy density should be computed by subtracting the Minkowski-space result from that computed in the FRW space-time. We discuss theoretical arguments that support this subtraction. By definition, this eliminates the quartic divergence in the vacuum energy density responsible for the cosmological constant problem. We show that the remaining quadratic divergence can be reabsorbed into a redefinition of Newton's constant only under the assumption that ∇μ<0|Tμν|0>=0, i.e. that the energy-momentum tensor of vacuum fluctuations is conserved in isolation. However in the presence of an ultra-light scalar field X with mX). If there is an exchange of energy between these two terms, there are potentially observable consequences. We construct an explicit model with an interaction between ρX and ρZ and we show that the total dark energy density ρDE(t)=ρX(t)+ρZ(t) always remains a finite fraction of the critical density at any time, providing a specific model of early dark energy. We discuss the implication of this result for the coincidence problem and we estimate the model parameters by means of a full likelihood analysis using current CMB, SNe Ia and BAO data.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.physletb.2011.09.010

Additional details

Identifiers

DOI
10.1016/j.physletb.2011.09.010;
arXiv
arXiv:1104.3797v3;
PII
S0370-2693(11)01072-0;

Publishing Information

Journal Title
Physics Letters. Section B
Journal Volume
704
Journal Issue
3
Journal Page Range
p. 102-107
ISSN
0370-2693
CODEN
PYLBAJ

Optional Information

Copyright
Copyright (c) 2011 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.