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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American Physical Society
2009-02-01
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Series: | Physical Review Special Topics. Accelerators and Beams |
Online Access: | http://doi.org/10.1103/PhysRevSTAB.12.020701 |
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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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