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Self-Thomson Backscattering of Ultra-Intense Laser from Thin Foil Target
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Journal of Electromagnetic Analysis and Applications·Volume 05 (2013)·Pages 43–48·Published 23 January 2013·DOI10.4236/jemaa.2013.51007
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Abstract
An electromagnetic solitary structure in attosecond regime is identified, costreaming with electron bunch. It is observed via nonlinear process of Self-Thomson backscattering of a n ultra-intense laser from thin foil target. The process is termed as Self-Thomson Backscattering since the counter propagating electron sheets are generated by the drive laser itself. The radiation pressure acceleration model is considered for the interaction of a super-intense linearly polarized laser pulse with a thin foil in one-dimensional (1D) particle-in-cell (PIC) simulations.
KeywordsUltra-Intense Laser Plasma InteractionThomson BackscatteringSolitary Electromagnetic Field
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