Compton Scattering of Self-Absorbed Synchrotron Emission
He Gao, Wei-Hua Lei, Xue-Feng Wu, Bing Zhang

TL;DR
This paper provides a comprehensive analytical study of Compton scattering of synchrotron emission, considering both weak and strong self-absorption regimes, with implications for understanding spectra in gamma-ray bursts and active galactic nuclei.
Contribution
It offers new analytical approximations for SSC spectra across all synchrotron spectral break orders, including effects of self-absorption and electron pile-up, extending previous models.
Findings
SSC flux increases linearly with frequency up to the self-absorption break.
Presence of a logarithmic term makes SSC spectra harder than simple power-law.
Strong absorption leads to a thermal component due to electron pile-up.
Abstract
Synchrotron self-Compton (SSC) scattering is an important emission mechanism in many astronomical sources, such as gamma-ray bursts (GRBs) and active galactic nuclei (AGNs). We give a complete presentation of the analytical approximations for the Compton scattering of synchrotron emission with both weak and strong synchrotron self-absorption. All possible orders of the characteristic synchrotron spectral breaks (, , and ) are studied. In the weak self-absorption regime, i.e., , the electron energy distribution is not modified by the self-absorption process. The shape of the SSC component broadly resembles that of synchrotron, but with the following features: The SSC flux increases linearly with frequency up to the SSC break frequency corresponding to the self-absorption frequency ; and the presence of a logarithmic…
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