Strong field electrodynamics of a thin foil
arXiv:1310.5181 · doi:10.1063/1.4848758
Abstract
Exact solutions describing the nonlinear electrodynamics of a thin double layer foil are presented. These solutions correspond to a broad range of problems of interest for the interaction of high intensity laser pulses with overdense plasmas such as frequency upshifting, high order harmonic generation and high energy ion acceleration.
14 pages, 15 figures
References in corpus (6)
- Nonlinear collective effects in photon-photon and photon-plasma interactions
- Radiation Pressure Dominate Regime of Relativistic Ion Acceleration
- Femtosecond x rays from laser-plasma accelerators
- Theory of high harmonic generation in relativistic laser interaction with overdense plasma
- Electromagnetic cascade in high energy electron, positron, and photon interactions with intense laser pulses
- On extreme field limits in high power laser matter interactions: radiation dominant regimes in high intensity electromagnetic wave interaction with electrons
Cited by in corpus (12)
- Charged particle motion and radiation in strong electromagnetic fields
- Implementing nonlinear Compton scattering beyond the local constant field approximation
- The effect of non-linear quantum electrodynamics on relativistic transparency and laser absorption in ultra-relativistic plasmas
- Gamma-ray generation in ultrahigh-intensity laser-foil interactions
- Giant isolated attosecond pulses from two-color laser plasma interactions
- Relativistic Mirrors in Laser Plasmas (Analytical Methods)
- Relativistically intense XUV radiation from laser-illuminated near-critical plasmas
- Incoherent synchrotron emission of laser-driven plasma edge
- Birefringence in thermally anisotropic relativistic plasmas and its impact on laser-plasma interactions
- The role of standing wave in the generation of hot electrons by femtosecond laser beams incident on dense ionized target
- Effect of Electromagnetic Pulse Transverse Inhomogeneity on the Ion Acceleration by Radiation Pressure
- Controlling the ellipticity of attosecond pulses produced by laser irradiation of overdense plasmas