English

Generation and acceleration of high brightness electrons beams bunched at X-ray wavelengths using plasma-based acceleration

Accelerator Physics 2022-06-17 v1 Plasma Physics

Abstract

We show using particle-in-cell (PIC) simulations and theoretical analysis that a high-quality electron beam whose density is modulated at angstrom scales can be generated directly using density downramp injection in a periodically modulated density in nonlinear plasma wave wakefields. The density modulation turns on and off the injection of electrons at the period of the modulation. Due to the unique longitudinal mapping between the electrons' initial positions and their final trapped positions inside the wake, this results in an electron beam with density modulation at a wavelength orders of magnitude shorter than the plasma density modulation. The ponderomotive force of two counter propagating lasers of the same frequency can generate a density modulation at half the laser wavelength. Assuming a laser wavelength of 0.8\micro\meter0.8\micro\meter, fully self-consistent OSIRIS PIC simulations show that this scheme can generate high quality beams modulated at wavelengths between 10s and 100 angstroms. Such beams could produce fully coherent, stable, hundreds of GW X-rays by going through a resonant undulator.

Keywords

Cite

@article{arxiv.2010.16081,
  title  = {Generation and acceleration of high brightness electrons beams bunched at X-ray wavelengths using plasma-based acceleration},
  author = {Xinlu Xu and Fei Li and Frank S. Tsung and Kyle Miller and Vitaly Yakimenko and Mark J. Hogan and Chan Joshi and Warren B. Mori},
  journal= {arXiv preprint arXiv:2010.16081},
  year   = {2022}
}

Comments

6 pages, 4 figures