QScatter: Numerical Framework for Fast Prediction of Particle Distributions in Electron-Laser Scattering
arXiv:2308.09348 · doi:10.1088/1361-6587/ad2975
Abstract
The new generation of multi-PetaWatt laser facilities will allow tests of Strong Field QED, as well as provide an opportunity for novel photon and lepton sources. The first experiments are planned to study the (nearly) head-on scattering of intense, focused laser pulses with either relativistic electron beams or high-energy photon sources. In this work, we present a numerical framework that can provide fast predictions of the asymptotic particle and photon distributions after the scattering. The works presented in this manuscript includes multiple features such as spatial and temporal misalignment between the laser and the scattering beam, broadband electron beams, and beam divergence. The expected mean energy, energy spread, divergence or other observables are calculated by combining an analytical description and numerical integration. This method can provide results within minutes on a personal computer, which would otherwise require full-scale 3D QED-PIC simulations using thousands of cores. The model, which has been compiled into an open-source code QScatter, may be used to support the analysis of large-size data sets from high-repetition rate experiments, leveraging its speed for optimization or reconstruction of experimental parameters.
17 pages, 9 figures
References in corpus (8)
- Conceptual Design Report for the LUXE Experiment
- Scaling laws for positron production in laser--electron-beam collisions
- Impact of the laser spatio-temporal shape on Breit-Wheeler pair production
- On Seminal HEDP Research Opportunities Enabled by Colocating Multi-Petawatt Laser with High-Density Electron Beams
- SFQEDtoolkit: a high-performance library for the accurate modeling of strong-field QED processes in PIC and Monte Carlo codes
- Are we ready to transfer optical light to gamma-rays?
- Machine Learning-based models in particle-in-cell codes for advanced physics extensions
- On-shot diagnostic of electron beam-laser pulse interaction based on stochastic quantum radiation reaction