Generation of electrons bunched at X-ray wavelength from plasma-based acceleration
ORAL
Abstract
We show using particle-in-cell simulations and theoretical analysis that a high-quality electron beam whose density is modulated at angstrom scale can be generated directly in density downramp injection in plasma-based acceleration. When two counter-propagating linearly polarized frequency degenerate laser pulses interfere inside a plasma downramp, a plasma density modulation at the one-half the optical wavelength is created driven by the ponderomotive force of the standing wave pattern and the restoring force of the plasma ions. The density modulation can turn on and off the injection of electrons at the modulation wavelength when an intense driver excites a wake across the downramp. Due to the unique longitudinal mapping between the electrons' initial positions and their final trapped positions inside the wake, an electron beam with density modulation at the X-ray wavelength can be generated in this scheme. Such a high quality, modulated beam can produce fully coherent, stable, hundreds of GW X-rays by going through a resonant undulator.
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Authors
Xinlu Xu
SLAC - Natl Accelerator Lab, SLAC National Accelerator Laboratory
Fei Li
University of California, Los Angeles, UCLA
Frank Tsung
University of California, Los Angeles, UCLA
Kyle Miller
University of California Los Angeles, University of California, Los Angeles, Dept. of Physics University of Californial Los Angeles, UCLA
Mark Hogna
SLAC National Accelerator Laboratory, SLAC - Natl Accelerator Lab
Vitaly Yakimenko
SLAC National Accelerator Laboratory, SLAC - Natl Accelerator Lab
Chan Joshi
University of California, Los Angeles, UCLA
Warren Mori
University of California, Los Angeles, University of California Los Angeles, Departments of Physics and Astronomy & Electrical and Computer Engineering, University of California, Los Angeles, UCLA