English

Robust direct laser acceleration of electrons with flying-focus laser pulses

Plasma Physics 2025-10-30 v1

Abstract

Direct laser acceleration (DLA) offers a compact source of high-charge, energetic electrons for generating secondary radiation or neutrons. While DLA in high-density plasma optimizes the energy transfer from a laser pulse to electrons, it exacerbates nonlinear propagation effects, such as filamentation, that can disrupt the acceleration process. Here, we show that superluminal flying-focus pulses (FFPs) mitigate nonlinear propagation, thereby enhancing the number of high-energy electrons and resulting x-ray yield. Three-dimensional particle-in-cell simulations show that, compared to a Gaussian pulse of equal energy (1 J) and intensity (2x10^20 W/cm^2), an FFP produces 80x more electrons above 100 MeV, increases the electron cutoff energy by 20%, triples the high-energy x-ray yield, and improves x-ray collimation. These results illustrate the ability of spatiotemporally structured laser pulses to provide additional control in the highly nonlinear, relativistic regime of laser-plasma interactions.

Keywords

Cite

@article{arxiv.2510.25376,
  title  = {Robust direct laser acceleration of electrons with flying-focus laser pulses},
  author = {Talia Meir and Kale Weichman and Alexey Arefiev and John P. Palastro and Ishay Pomerantz},
  journal= {arXiv preprint arXiv:2510.25376},
  year   = {2025}
}