In the interaction of laser pulses of extreme intensity (> 10(23) W cm(-2)) with high-density, thick plasma targets, simulations show significant radiation friction losses, in contrast to thin targets for which such losses are negligible. We present an analytical calculation, based on classical radiation friction modeling, of the conversion efficiency of the laser energy into incoherent radiation in the case when a circularly polarized pulse interacts with a thick plasma slab of overcritical initial density. By accounting for three effects including the influence of radiation losses on the single electron trajectory, the global 'hole boring' motion of the laser-plasma interaction region under the action of radiation pressure, and the inhomogeneity of the laser field in both longitudinal and transverse direction, we find a good agreement with the results of three-dimensional particle-in-cell simulations. Overall, the collective effects greatly reduce radiation losses with respect to electrons driven by the same laser pulse in vacuum, which also shift the reliability of classical calculations up to higher intensities.

Efficiency of radiation friction losses in laser-driven 'hole boring' of dense targets

Macchi A
2019

Abstract

In the interaction of laser pulses of extreme intensity (> 10(23) W cm(-2)) with high-density, thick plasma targets, simulations show significant radiation friction losses, in contrast to thin targets for which such losses are negligible. We present an analytical calculation, based on classical radiation friction modeling, of the conversion efficiency of the laser energy into incoherent radiation in the case when a circularly polarized pulse interacts with a thick plasma slab of overcritical initial density. By accounting for three effects including the influence of radiation losses on the single electron trajectory, the global 'hole boring' motion of the laser-plasma interaction region under the action of radiation pressure, and the inhomogeneity of the laser field in both longitudinal and transverse direction, we find a good agreement with the results of three-dimensional particle-in-cell simulations. Overall, the collective effects greatly reduce radiation losses with respect to electrons driven by the same laser pulse in vacuum, which also shift the reliability of classical calculations up to higher intensities.
2019
Istituto Nazionale di Ottica - INO
Inglese
21
3
033009
033009
10
https://iopscience.iop.org/article/10.1088/1367-2630/ab0119
Sì, ma tipo non specificato
radiation friction force
laser plasma
ultrahigh laser fields
Authors acknowledge fruitful discussions with SV Bulanov, AM Fedotov, EG Gelfer, G Korn, VT Tikhonchuck, and S Weber. SVP acknowledges support of the MEPhI Academic Excellence Project (Contract No. 02.a03.21.0005) and of the Russian Foundation for Basic Research through Grant No. 16-02-00963a. The development of numerical algorithms was supported by Russian Science Foundation through Grant No. 16-11-10028. Numerical simulations were performed using the computing resources granted by the John von Neumann-Institut fur Computing (Research Center Julich) under the project HRO04.
3
info:eu-repo/semantics/article
262
Popruzhenko, S V; Liseykina, T V; Macchi, A
01 Contributo su Rivista::01.01 Articolo in rivista
open
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/379314
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