Modeling laser wakefield accelerators in a Lorentz boosted frame
J.-L. Vay, C. G. R. Geddes, E. Cormier-Michel, D. P. Grote

TL;DR
This paper demonstrates that modeling laser wakefield accelerators in a Lorentz boosted frame significantly accelerates simulations, enabling efficient high-energy stage modeling and verifying accelerator scaling laws.
Contribution
The paper introduces advanced mitigation techniques for high-frequency instabilities in boosted frame simulations, achieving unprecedented speedups and enabling large-scale accelerator modeling.
Findings
Achieved up to 6 orders of magnitude speedup for 1 TeV stages.
Demonstrated accurate simulation results across different frames of reference.
Enabled direct modeling of multi-GeV to TeV laser plasma accelerators.
Abstract
Modeling of laser-plasma wakefield accelerators in an optimal frame of reference \cite{VayPRL07} is shown to produce orders of magnitude speed-up of calculations from first principles. Obtaining these speedups requires mitigation of a high-frequency instability that otherwise limits effectiveness in addition to solutions for handling data input and output in a relativistically boosted frame of reference. The observed high-frequency instability is mitigated using methods including an electromagnetic solver with tunable coefficients, its extension to accomodate Perfectly Matched Layers and Friedman's damping algorithms, as well as an efficient large bandwidth digital filter. It is shown that choosing the frame of the wake as the frame of reference allows for higher levels of filtering and damping than is possible in other frames for the same accuracy. Detailed testing also revealed…
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