Investigating the growth rate in a free-electron laser with a laser wiggler and plasma background

In this paper, a free-electron laser (FEL) growth rate with a laser wiggler in which plasma background is used to generate short wavelengths in x-ray regimes, has been investigated theoretically. A linearly polarized laser pulse, due to having short wiggler periods (inrange) is able to produce coher...

Full description

Bibliographic Details
Main Authors: N Esmaeildoost, S Jafari
Format: Article
Language:English
Published: Isfahan University of Technology 2017-02-01
Series:Iranian Journal of Physics Research
Subjects:
Online Access:http://ijpr.iut.ac.ir/browse.php?a_code=A-10-1-802&slc_lang=en&sid=1
id doaj-dea211059e344a79867a964ab9fd8916
record_format Article
spelling doaj-dea211059e344a79867a964ab9fd89162020-11-24T23:16:18ZengIsfahan University of TechnologyIranian Journal of Physics Research1682-69572345-36642017-02-01164351358Investigating the growth rate in a free-electron laser with a laser wiggler and plasma backgroundN Esmaeildoost0S Jafari1 1. Department of Physics, Faculty of Science, University of Guilan, Rasht, Iran 1. Department of Physics, Faculty of Science, University of Guilan, Rasht, Iran In this paper, a free-electron laser (FEL) growth rate with a laser wiggler in which plasma background is used to generate short wavelengths in x-ray regimes, has been investigated theoretically. A linearly polarized laser pulse, due to having short wiggler periods (inrange) is able to produce coherent radiations in x-ray regions and can be applied as a planar wiggler in a FEL. Phase velocity of the laser pulse in presence of plasma background decreases. In this case, the electron beam can be in synchronism with the laser pulse and enters the interaction region with less energy which leads to producing x-ray pulses by low enegy beams, without requiring high beam energies. This configuration allows obtaining higher frequencies than conventional FELs (with magnetostatic wigglers) for a device. Employing a perturbation  analysis for the momentum transfer, continuity, and Maxwell equations, the dispersion relation for system has been derived  and the effect of plasma density variation on growth rate of a free electron laser with a laser wiggler and plasma background has been discussed. In addition, cross section of electron trajectories for different values of axial magnetic field has been simulated by using fourth order Runge-Kutta method. Results shows that by increasing plasma density, growth rate for group  and decreases, while for group  increaseshttp://ijpr.iut.ac.ir/browse.php?a_code=A-10-1-802&slc_lang=en&sid=1free-electron laser growth rate dispersion relation plasma background
collection DOAJ
language English
format Article
sources DOAJ
author N Esmaeildoost
S Jafari
spellingShingle N Esmaeildoost
S Jafari
Investigating the growth rate in a free-electron laser with a laser wiggler and plasma background
Iranian Journal of Physics Research
free-electron laser
growth rate
dispersion relation
plasma background
author_facet N Esmaeildoost
S Jafari
author_sort N Esmaeildoost
title Investigating the growth rate in a free-electron laser with a laser wiggler and plasma background
title_short Investigating the growth rate in a free-electron laser with a laser wiggler and plasma background
title_full Investigating the growth rate in a free-electron laser with a laser wiggler and plasma background
title_fullStr Investigating the growth rate in a free-electron laser with a laser wiggler and plasma background
title_full_unstemmed Investigating the growth rate in a free-electron laser with a laser wiggler and plasma background
title_sort investigating the growth rate in a free-electron laser with a laser wiggler and plasma background
publisher Isfahan University of Technology
series Iranian Journal of Physics Research
issn 1682-6957
2345-3664
publishDate 2017-02-01
description In this paper, a free-electron laser (FEL) growth rate with a laser wiggler in which plasma background is used to generate short wavelengths in x-ray regimes, has been investigated theoretically. A linearly polarized laser pulse, due to having short wiggler periods (inrange) is able to produce coherent radiations in x-ray regions and can be applied as a planar wiggler in a FEL. Phase velocity of the laser pulse in presence of plasma background decreases. In this case, the electron beam can be in synchronism with the laser pulse and enters the interaction region with less energy which leads to producing x-ray pulses by low enegy beams, without requiring high beam energies. This configuration allows obtaining higher frequencies than conventional FELs (with magnetostatic wigglers) for a device. Employing a perturbation  analysis for the momentum transfer, continuity, and Maxwell equations, the dispersion relation for system has been derived  and the effect of plasma density variation on growth rate of a free electron laser with a laser wiggler and plasma background has been discussed. In addition, cross section of electron trajectories for different values of axial magnetic field has been simulated by using fourth order Runge-Kutta method. Results shows that by increasing plasma density, growth rate for group  and decreases, while for group  increases
topic free-electron laser
growth rate
dispersion relation
plasma background
url http://ijpr.iut.ac.ir/browse.php?a_code=A-10-1-802&slc_lang=en&sid=1
work_keys_str_mv AT nesmaeildoost investigatingthegrowthrateinafreeelectronlaserwithalaserwigglerandplasmabackground
AT sjafari investigatingthegrowthrateinafreeelectronlaserwithalaserwigglerandplasmabackground
_version_ 1725587684612636672