Creation of the CMB spectrum: precise analytic solutions for the blackbody photosphere
Rishi Khatri, Rashid A. Sunyaev

TL;DR
This paper derives highly accurate analytic solutions for the evolution of the CMB spectrum around redshift 2x10^6, enabling precise calculations of spectral distortions and constraints on early Universe physics.
Contribution
It provides the first analytic solutions with better than 1% accuracy for the decay of $bc$ distortions including all key processes, improving upon previous solutions with ~10% accuracy.
Findings
Analytic solutions achieve better than 1% accuracy.
Energy injection sources like annihilation and nucleosynthesis are quantified.
Degeneracy in spectral distortions from different early Universe processes is highlighted.
Abstract
The blackbody spectrum of CMB was created in the blackbody photosphere at redshifts z>2x10^6. At these early times, the Universe was dense and hot enough that complete thermal equilibrium between baryonic matter (electrons and ions) and photons could be established. Any perturbation away from the blackbody spectrum was suppressed exponentially. New physics, for example annihilation and decay of dark matter, can add energy and photons to CMB at redshifts z>10^5 and result in a Bose-Einstein spectrum with a non-zero chemical potential (). Precise evolution of the CMB spectrum around the critical redshift of z~2x10^6 is required in order to calculate the -type spectral distortion and constrain the underlying new physics. Although numerical calculation of important processes involved (double Compton process, comptonization and bremsstrahlung) is not difficult, analytic solutions…
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