Enhanced ion beam energy by relativistic transparency in laser-driven shock ion acceleration
POSTER
Abstract
We investigated the effects of relativistic transparency (RT) on electrostatic shock ion acceleration. Penetrating portion of the laser pulse directly heats up the electrons to a very high temperature in backside of the target, resulting in a condition of high shock velocity. The reflected portion of the pulse can yield a fast hole boring and density compression in near-critical density plasma to satisfy the electrostatic shock condition; 1.5 \textless M \textless 3.7. The high speed electrostatic shock reflects upstream ions up to velocity \textasciitilde 2v$_{sh}$. In 1D PIC simulation, we have clearly observed RT-based shock acceleration which generates significantly higher ion beam energy in comparison to that in a purely opaque plasma. In multi-dimensional systems, various instabilities should be considered such as Weibel-like instability, which causes filamentation during the laser penetration. From series of comparisons of linearly polarized and circularly polarized pulses for the RT-based shock, we observed the circularly polarized pulse is usually more advantageous in reducing the instability, possibly leading to better RT-based shock acceleration.
Authors
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Young-Kuk Kim
School of Electrical and Computer Engineering, Ulsan Natl Inst of Sci & Tech
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Min Sup Hur
School of Natural Science, Ulsan Natl Inst of Sci & Tech