Abstract
We calculate the bispectrum of the Cosmic Microwave Background (CMB) temperature anisotropies induced by the second-order fluctuations in the Boltzmann equation. In this paper, which is one of a series of papers on the numerical calculation of the bispectrum from the second-order fluctuations, we consider the terms that are products of the first-order perturbations, and leave intrinsically second-order terms and perturbations in the recombination history to the subsequent papers. We show that the bispectrum has the maximum signal in the squeezed triangles, similar to the local-type primordial bispectrum, as both types generate non-linearities via products of the first-order terms in position space. However, detailed calculations show that their shapes are sufficiently different: the cross-correlation coefficient reaches 0.5 at the maximum multipole of l max ∼ 200, and then weakens to 0.3 at l max ∼ 2000. The differences in shape arise from (i) the way the acoustic oscillations affect the bispectrum, and (ii) the second-order effects not being scale-invariant. This implies that the contamination of the primordial bispectrum due to the second-order effects (from the products of the first-order terms) is small. The expected signal-to-noise ratio of the products of the first-order terms is ∼ 0.4 at l max ∼ 2000 for a full-sky, cosmic variance limited experiment. We therefore conclude that the products of the first-order terms may be safely ignored in the analysis of the future CMB experiments. The expected contamination of the local-form f NL is f localNL ∼ 0.9 at l max ∼ 200, and f localNL ∼ 0.5 at l max ∼ 2000. © 2009 IOP Publishing Ltd and SISSA.
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CITATION STYLE
Nitta, D., Komatsu, E., Bartolo, N., Matarrese, S., & Riotto, A. (2009). CMB anisotropies at second order III: Bispectrum from products of the first-order perturbations. Journal of Cosmology and Astroparticle Physics, 2009(5). https://doi.org/10.1088/1475-7516/2009/05/014
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