Monte Carlo simulation method of polarization effects in Laser Compton Scattering on relativistic electrons
Dan Filipescu (1) ((1) Horia Hulubei National Institute for R&D in, Physics, Nuclear Engineering (IFIN-HH))

TL;DR
This paper presents a Monte Carlo simulation method using Geant4 to model polarization effects in laser Compton scattering on relativistic electrons, providing detailed algorithms and validation for polarization transfer.
Contribution
It introduces the eliLaBr simulation code with polarization modeling in both Stokes and vector formalisms, including validation and user guidance for different physics classes.
Findings
Polarization transfer increases with collision angle.
Almost complete polarization transfer occurs regardless of incident angle.
The simulation accurately models spatial, energy, and polarization distributions.
Abstract
Quasi-monochromatic, high energy and highly polarized -ray beam sources based on Compton scattering of laser photons (LCS) on relativistic electrons have developed for the last few decades as established instruments for nuclear physics studies. Following an extensive photoneutron experimental campaign at the LCS -ray beam line of the NewSUBARU synchrotron radiation facility at SPring8, Japan, a dedicated simulation code was developed for characterizing the incident -ray beams. The eliLaBr code is implemented using Geant4 and is available on the GitHub repository, at https://github.com/dan-mihai-filipescu/eliLaBr . The present work describes step-by-step the Monte Carlo algorithm with focus on modeling the polarization properties of the scattered photon. The polarization is treated independently both in the Stokes parameters and in the polarization vector…
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Taxonomy
TopicsNuclear Physics and Applications · Laser-induced spectroscopy and plasma · X-ray Spectroscopy and Fluorescence Analysis
