CMB at 2x2 order: the dissipation of primordial acoustic waves and the observable part of the associated energy release
Jens Chluba, Rishi Khatri, Rashid A. Sunyaev

TL;DR
This paper presents a comprehensive second-order perturbation theory analysis of spectral distortions in the CMB caused by Silk damping of primordial acoustic waves, highlighting their potential to probe inflationary physics.
Contribution
It provides a full 2x2 treatment of spectral distortion creation and evolution, including polarization and photon mixing effects, improving upon previous estimates.
Findings
One-third of the dissipated energy creates observable spectral distortions.
Dissipation effects vary with redshift, dominated by quadrupole anisotropies early and peculiar motions later.
For certain cosmologies, baryonic cooling offsets acoustic dissipation heating.
Abstract
Silk damping of primordial small-scale perturbations in the photon-baryon fluid due to diffusion of photons inevitably creates spectral distortions in the CMB. With the proposed CMB experiment PIXIE it might become possible to measure these distortions and thereby constrain the primordial power spectrum at comoving wavenumbers 50 Mpc^{-1} < k < 10^4 Mpc^{-1}. Since primordial fluctuations in the CMB on these scales are completely erased by Silk damping, these distortions may provide the only way to shed light on otherwise unobservable aspects of inflationary physics. A consistent treatment of the primordial dissipation problem requires going to second order in perturbation theory, while thermalization of these distortions necessitates consideration of second order in Compton scattering energy transfer. Here we give a full 2x2 treatment for the creation and evolution of spectral…
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