English

Cosmic microwave background constraints on dark energy dynamics: analysis beyond the power spectrum

Astrophysics 2009-11-10 v2

Abstract

We consider the distribution of the non-Gaussian signal induced by weak lensing on the primary total intensity cosmic microwave background (CMB) anisotropies. Our study focuses on the three point statistics exploiting an harmonic analysis based on the CMB bispectrum. By considering the three multipoles as independent variables, we reveal a complex structure of peaks and valleys determined by the re-projection of the primordial acoustic oscillations through the lensing mechanism. We study the dependence of this system on the expansion rate at the epoch in which the weak lensing power injection is relevant, probing the dark energy equation of state at redshift corresponding to the equivalence with matter or higher (ww_\infty). We evaluate the impact of the bispectrum observable on the CMB capability of constraining the dark energy dynamics. We perform a maximum likelihood analysis by varying the dark energy abundance, the present equation of state w0w_0 and ww_\infty. We show that the projection degeneracy affecting a pure power spectrum analysis in total intensity is broken if the bispectrum is taken into account. For a Planck-like experiment, assuming nominal performance, no foregrounds or systematics, and fixing all the parameters except w0w_0, ww_\infty and the dark energy abundance, a percent and ten percent precision measure of w0w_0 and ww_\infty is achievable from CMB data only. These results indicate that the detection of the weak lensing signal by the forthcoming CMB probes may be relevant to gain insight into the dark energy dynamics at the onset of cosmic acceleration.

Keywords

Cite

@article{arxiv.astro-ph/0411702,
  title  = {Cosmic microwave background constraints on dark energy dynamics: analysis beyond the power spectrum},
  author = {Fabio Giovi and Carlo Baccigalupi and Francesca Perrotta},
  journal= {arXiv preprint arXiv:astro-ph/0411702},
  year   = {2009}
}

Comments

14 pages, 9 figures. Matching version accepted by Physical Review D. High resolution figures available upon request to the authors