English

Vacuum laser acceleration of super-ponderomotive electrons using relativistic transparency injection

Plasma Physics 2022-02-02 v1 Accelerator Physics

Abstract

Intense lasers can accelerate electrons to very high energy over a short distance. Such compact accelerators have several potential applications including fast ignition, high energy physics, and radiography. Among the various schemes of laser-based electron acceleration, vacuum laser acceleration has the merits of super-high acceleration gradient and great simplicity. Yet its realization has been difficult because injecting free electrons into the fast-oscillating laser field is not trivial. Here we demonstrate free-electron injection and subsequent vacuum laser acceleration of electrons up to 20 MeV using the relativistic transparency effect. When a high-contrast intense laser drives a thin solid foil, electrons from the dense opaque plasma are first accelerated to near-light speed by the standing laser wave in front of the solid foil and subsequently injected into the transmitted laser field as the opaque plasma becomes relativistically transparent. It is possible to further optimize the electron injection/acceleration by manipulating the laser polarization, incident angle, and temporal pulse shaping. Our result also sheds new light on the fundamental relativistic transparency process, crucial for producing secondary particle and light sources.

Keywords

Cite

@article{arxiv.2110.13942,
  title  = {Vacuum laser acceleration of super-ponderomotive electrons using relativistic transparency injection},
  author = {P. K. Singh and F. -Y. Li and C. -K. Huang and A. Moreau and R. Hollinger and A. Junghans and A. Favalli and C. Calvi and S. Wang and Y. Wang and H. Song and J. J. Rocca and B. Reinovsky and S. Palaniyappan},
  journal= {arXiv preprint arXiv:2110.13942},
  year   = {2022}
}

Comments

18 pages, 7 figures