English

Towards controlling electron charge with nanoparticle assisted laser wakefield accelerators

Plasma Physics 2025-11-27 v2

Abstract

This study explores nanoparticle-assisted electron injection as a method for controlling beam charge in laser wakefield acceleration through particle-in-cell simulations. We systematically investigate how the material (Li through Au) and size (50-200 nm) of nanoparticles influence electron injection dynamics and beam charge. Our results demonstrate that beam charge (10-600 pC) can be effectively controlled by adjusting these parameters. We identify a saturation threshold in the nanoparticle electric field strength, beyond which beam charge depends on the total number of atoms in the nanoparticle rather than on the electron density after ionization. Significant electron injection occurs across multiple plasma wave periods with distribution patterns influenced by nanoparticle properties leading to increased beam charge but a broader energy spread. These findings offer practical guidelines for experimental implementation of nanoparticle-assisted injection in laser wakefield accelerators to tailor electron beam characteristics for various applications.

Keywords

Cite

@article{arxiv.2508.10685,
  title  = {Towards controlling electron charge with nanoparticle assisted laser wakefield accelerators},
  author = {Alžběta Špádová and Petr Valenta and Sebastian Lorenz and Michal Nevrkla and Jaroslav Nejdl and Gabriele M. Grittani and Sergei V. Bulanov},
  journal= {arXiv preprint arXiv:2508.10685},
  year   = {2025}
}

Comments

9 pages, 5 figures, submitted to Physics of Plasmas

R2 v1 2026-07-01T04:50:00.985Z