Publications by authors named "Frank S Tsung"

The longitudinal coherence of X-ray free-electron lasers (XFELs) in the self-amplified spontaneous emission regime could be substantially improved if the high brightness electron beam could be pre-bunched on the radiated wavelength-scale. Here, we show that it is indeed possible to realize such current modulated electron beam at angstrom scale by exciting a nonlinear wake across a periodically modulated plasma-density downramp/plasma cathode. The density modulation turns on and off the injection of electrons in the wake while downramp provides a unique longitudinal mapping between the electrons' initial injection positions and their final trapped positions inside the wake.

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The relativistically induced transparency acceleration (RITA) scheme of proton and ion acceleration using laser-plasma interactions is introduced, modeled, and compared to the existing schemes. Protons are accelerated with femtosecond relativistic pulses to produce quasimonoenergetic bunches with controllable peak energy. The RITA scheme works by a relativistic laser inducing transparency [Akhiezer and Polovin, Zh.

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The formation of strong, high Mach number (2-3), electrostatic shocks by laser pulses incident on overdense plasma slabs is observed in one- and two-dimensional particle-in-cell simulations, for a wide range of intensities, pulse durations, target thicknesses, and densities. The shocks propagate undisturbed across the plasma, accelerating the ions (protons). For a dimensionless field strength parameter a(0)=16 (Ilambda(2) approximately 3 x 10(20) W cm(-2) microm(2), where I is the intensity and lambda the wavelength), and target thicknesses of a few microns, the shock is responsible for the highest energy protons.

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Synopsis of recent research by authors named "Frank S Tsung"

  • - Frank S Tsung's research primarily focuses on advanced plasma physics and electron acceleration techniques, especially in the context of photon sources like X-ray free-electron lasers (XFELs).
  • - His 2022 study demonstrated the potential of generating ultrahigh-brightness, pre-bunched electron beams via plasma cathodes, which significantly enhances the coherence of XFELs by modulating electron currents at angstrom scales.
  • - Earlier works, including the introduction of the relativistically induced transparency acceleration (RITA) method and the study of proton shock acceleration in laser-plasma interactions, highlight his contributions to understanding and optimizing ion acceleration using laser technologies.