Dispersion relation and growth rate of a relativistic electron beam propagating through a Langmuir wave wiggler
Abstract
In this study, a theory of free-electron laser (FEL) with a Langmuir wave wiggler in the presence of an axial magnetic field has been presented. The small wavelength of the plasma wave (in the sub-mm range) allows obtaining higher frequency than conventional wiggler FELs. Electron trajectories have been obtained by solving the equations of motion for a single electron. In addition, a fourth-order Runge-Kutta method has been used to simulate the electron trajectories. Employing a perturbation analysis, the dispersion relation for an electromagnetic and space-charge waves has been derived by solving the momentum transfer, continuity, and wave equations. Numerical calculations show that the growth rate increases with increasing the e-beam energy and e-beam density, while it decreases with increasing the strength of the axial guide magnetic field.
- Publication:
-
Journal of Plasma Physics
- Pub Date:
- June 2015
- DOI:
- 10.1017/S0022377814001263
- Bibcode:
- 2015JPlPh..81c9002Z