Classical radiation effects on relativistic electrons in ultraintense laser fields with circular polarization

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Abstract

The propagation of a relativistic electron with initial energy ≳100MeV in a number of simple one-dimensional laser field configurations with circular polarization is studied by solving the relativistic equation of motion in the Landau-Lifschitz approach to account for the radiation friction force. The radiation back-reaction on the electron dynamics becomes visible at dimensionless field amplitudes a ≳ 10 at these high particle energies. Analytical expressions are derived for the energy and the longitudinal momentum of the electron, the frequency shift of the light scattered by the electron and the particle trajectories. These findings are compared with the numerical solutions of the basic equations. A strong radiation damping effect results in reduced light scattering, forming at the same time a broad quasi-continuous spectrum. In addition, the electron dynamics in the strong field of a quasistationary laser piston is investigated. Analytical solutions for the electron trajectories in this complex field pattern are obtained and compared with the numerical solutions. The radiation friction force may stop a relativistic electron after propagation over several laser wavelengths at high laser field strengths, which supports the formation of a stable piston. © IOP Publishing Ltd and Deutsche Physikalische Gesellschaft.

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APA

Schlegel, T., & Tikhonchuk, V. T. (2012). Classical radiation effects on relativistic electrons in ultraintense laser fields with circular polarization. New Journal of Physics, 14. https://doi.org/10.1088/1367-2630/14/7/073034

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