Radiation mediated shocks in gamma-ray bursts: Pair creation
Christoffer Lundman, Andrei Beloborodov, Indrek Vurm

TL;DR
This paper presents a new relativistic Monte Carlo code that models radiation-mediated shocks in gamma-ray bursts, including pair creation, and analyzes their spectra and structure deep below the photosphere.
Contribution
It introduces a self-consistent, time-dependent simulation framework for relativistic shocks with pair production, advancing understanding of GRB prompt emission mechanisms.
Findings
Shocks produce power-law photon spectra extending from upstream energies.
Strong shocks generate significant electron-positron pairs, affecting shock width.
Post-shock spectra thermalize downstream with kinetic equilibrium at high optical depths.
Abstract
Sub-photospheric shock dissipation is one of the main proposed mechanisms for producing the prompt gamma-ray burst (GRB) emission. Such shocks are mediated by scattering of radiation. We introduce a time dependent, special relativistic code which dynamically couples Monte Carlo radiative transfer to the flow hydrodynamics. The code also self-consistently implements electron-positron pair production and annihilation. We simulate shocks with properties relevant for GRBs and study the steady-state solutions, which are accurate deep below the jet photosphere. The shock generates a power-law photon spectrum through the first-order Fermi mechanism, extending upwards from the typical upstream photon energy. Strong shocks (for which the downstream pressure is much larger than the upstream pressure) have rising shock spectra. The spectrum extends up to $\epsilon_{max} \equiv…
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