Accurately simulating nine-dimensional phase space of relativistic particles in strong fields
Fei Li, Viktor K. Decyk, Kyle G. Miller, Adam Tableman, Frank S., Tsung, Marija Vranic, Ricardo A. Fonseca, Warren B. Mori

TL;DR
This paper introduces a new analytical 9D phase space particle pusher for relativistic particles in strong electromagnetic fields, improving accuracy and efficiency in high-fidelity PIC simulations of laser-matter interactions.
Contribution
The authors develop an analytical solution-based 9D particle pusher that accurately models relativistic particles with spin and radiation reaction in ultra-high fields, reducing time step constraints.
Findings
Enhanced accuracy in particle trajectory simulations.
Reduced computational time due to larger stable time steps.
Validated with single-particle and full PIC simulations.
Abstract
Next-generation high-power lasers that can be focused to intensities exceeding 10^23 W/cm^2 are enabling new physics and applications. The physics of how these lasers interact with matter is highly nonlinear, relativistic, and can involve lowest-order quantum effects. The current tool of choice for modeling these interactions is the particle-in-cell (PIC) method. In strong fields, the motion of charged particles and their spin is affected by radiation reaction. Standard PIC codes usually use Boris or its variants to advance the particles, which requires very small time steps in the strong-field regime to obtain accurate results. In addition, some problems require tracking the spin of particles, which creates a 9D particle phase space (x, u, s). Therefore, numerical algorithms that enable high-fidelity modeling of the 9D phase space in the strong-field regime are desired. We present a…
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