Space-charge effects in ultrahigh current electron bunches generated by laser-plasma accelerators

Recent advances in laser-plasma accelerators, including the generation of GeV-scale electron bunches, enable applications such as driving a compact free-electron laser (FEL). Significant reduction in size of the FEL is facilitated by the expected ultrahigh peak beam currents (10–100 kA) generated in...

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Main Authors: F. J. Grüner, C. B. Schroeder, A. R. Maier, S. Becker, J. M. Mikhailova
Format: Article
Language:English
Published: American Physical Society 2009-02-01
Series:Physical Review Special Topics. Accelerators and Beams
Online Access:http://doi.org/10.1103/PhysRevSTAB.12.020701
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spelling doaj-fddf3b9ce5544907b2c11e1dcb5031f22020-11-24T20:48:18ZengAmerican Physical SocietyPhysical Review Special Topics. Accelerators and Beams1098-44022009-02-0112202070110.1103/PhysRevSTAB.12.020701Space-charge effects in ultrahigh current electron bunches generated by laser-plasma acceleratorsF. J. GrünerC. B. SchroederA. R. MaierS. BeckerJ. M. MikhailovaRecent advances in laser-plasma accelerators, including the generation of GeV-scale electron bunches, enable applications such as driving a compact free-electron laser (FEL). Significant reduction in size of the FEL is facilitated by the expected ultrahigh peak beam currents (10–100 kA) generated in laser-plasma accelerators. At low electron energies such peak currents are expected to cause space-charge effects such as bunch expansion and induced energy variations along the bunch, potentially hindering the FEL process. In this paper we discuss a self-consistent approach to modeling space-charge effects for the regime of laser-plasma-accelerated ultracompact electron bunches at low or moderate energies. Analytical treatments are considered as well as point-to-point particle simulations, including the beam transport from the laser-plasma accelerator through focusing devices and the undulator. In contradiction to non-self-consistent analyses (i.e., neglecting bunch evolution), which predict a linearly growing energy chirp, we have found the energy chirp reaches a maximum and decreases thereafter. The impact of the space-charge induced chirp on FEL performance is discussed and possible solutions are presented.http://doi.org/10.1103/PhysRevSTAB.12.020701
collection DOAJ
language English
format Article
sources DOAJ
author F. J. Grüner
C. B. Schroeder
A. R. Maier
S. Becker
J. M. Mikhailova
spellingShingle F. J. Grüner
C. B. Schroeder
A. R. Maier
S. Becker
J. M. Mikhailova
Space-charge effects in ultrahigh current electron bunches generated by laser-plasma accelerators
Physical Review Special Topics. Accelerators and Beams
author_facet F. J. Grüner
C. B. Schroeder
A. R. Maier
S. Becker
J. M. Mikhailova
author_sort F. J. Grüner
title Space-charge effects in ultrahigh current electron bunches generated by laser-plasma accelerators
title_short Space-charge effects in ultrahigh current electron bunches generated by laser-plasma accelerators
title_full Space-charge effects in ultrahigh current electron bunches generated by laser-plasma accelerators
title_fullStr Space-charge effects in ultrahigh current electron bunches generated by laser-plasma accelerators
title_full_unstemmed Space-charge effects in ultrahigh current electron bunches generated by laser-plasma accelerators
title_sort space-charge effects in ultrahigh current electron bunches generated by laser-plasma accelerators
publisher American Physical Society
series Physical Review Special Topics. Accelerators and Beams
issn 1098-4402
publishDate 2009-02-01
description Recent advances in laser-plasma accelerators, including the generation of GeV-scale electron bunches, enable applications such as driving a compact free-electron laser (FEL). Significant reduction in size of the FEL is facilitated by the expected ultrahigh peak beam currents (10–100 kA) generated in laser-plasma accelerators. At low electron energies such peak currents are expected to cause space-charge effects such as bunch expansion and induced energy variations along the bunch, potentially hindering the FEL process. In this paper we discuss a self-consistent approach to modeling space-charge effects for the regime of laser-plasma-accelerated ultracompact electron bunches at low or moderate energies. Analytical treatments are considered as well as point-to-point particle simulations, including the beam transport from the laser-plasma accelerator through focusing devices and the undulator. In contradiction to non-self-consistent analyses (i.e., neglecting bunch evolution), which predict a linearly growing energy chirp, we have found the energy chirp reaches a maximum and decreases thereafter. The impact of the space-charge induced chirp on FEL performance is discussed and possible solutions are presented.
url http://doi.org/10.1103/PhysRevSTAB.12.020701
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