DocumentCode :
863270
Title :
The Michelson resonator free-electron laser. II. Supermode structure and mirror detuning effects
Author :
Szarmes, Eric B. ; Madey, John M.J.
Author_Institution :
Dept. of Phys., Duke Univ., Durham, NC, USA
Volume :
29
Issue :
2
fYear :
1993
fDate :
2/1/1993 12:00:00 AM
Firstpage :
465
Lastpage :
478
Abstract :
For pt.I, see ibid., vol.29, no.2, p.452-64 (1993). Conventional mode-locked laser theory is applied to the longitudinal mode structure in an RF linac-driven Michelson resonator free-electron laser (FEL). A greatly simplified derivation of the small-signal small-gain FEL coupled mode equations is obtained. These equations are solved numerically in the frequency domain to study the supermode evolution in the presence of mode dependent cavity losses. The results are compared with simulations of the detuned Michelson resonator FEL using a pulse propagation code based on the Maxwell-Lorentz equations of motion. Increasing the interferometer detuning broadens and shifts the cavity detuning curve, narrows the supermode spectrum, and decreases the hypermode decay rates. The practical consequences of each of these effects are discussed. A simple theory describing the dependence of the hypermode decay rates on interferometer detuning, in which the decay rates are abruptly decreased beyond a critical detuning that depends primarily on the slippage length, is outlined
Keywords :
free electron lasers; laser cavity resonators; laser mode locking; laser modes; laser theory; laser tuning; light interferometers; mirrors; optical losses; Maxwell-Lorentz equations of motion; Michelson resonator free-electron laser; RF linac driven FEL; cavity detuning curve; critical detuning; frequency domain; hypermode decay rates; interferometer; longitudinal mode structure; mirror detuning effects; mode dependent cavity losses; mode-locked laser theory; pulse propagation code; slippage length; small-signal small-gain FEL coupled mode equations; supermode structure; Free electron lasers; Laser mode locking; Laser modes; Laser theory; Maxwell equations; Mirrors; Optical coupling; Optical pulses; Optical resonators; Radio frequency;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/3.199301
Filename :
199301
Link To Document :
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