Title :
Gain-grating analysis of a self-starting self-pumped phase-conjugate Nd:YAG loop resonator
Author :
Sillard, Pierre ; Brignon, Arnaud ; Huignard, Jean-Pierre
Author_Institution :
Lab. Central de Recherches, Thomson-CSF, Orsay, France
fDate :
3/1/1998 12:00:00 AM
Abstract :
We investigate both experimentally and theoretically the contribution of the different gain gratings in a self-starting self-pumped phase-conjugate Nd:YAG loop resonator. Thanks to a transient model, we show that the transmission-grating configuration is more efficient than the reflection-grating configuration, and that their temporal dynamics are different, in agreement with the experiment. Maximum extraction is obtained for the four-grating configuration. The output beam is a high-quality diffraction-limited TEM00 mode, even with severe intracavity phase aberrations, and has a single-longitudinal-mode pulse shape of ~13 ns, with maximum energy of ~130 mJ up to 30 Hz. We also investigate the role of the output coupler reflectivity on the output pulse energy and formation. Finally, the influence of the different gratings on the ability of such a self-starting loop resonator to correct for polarization distorsions is studied
Keywords :
aberrations; laser cavity resonators; laser modes; laser theory; neodymium; optical couplers; optical phase conjugation; optical pumping; reflectivity; solid lasers; 13 ns; 130 mJ; YAG:Nd; YAl5O12:Nd; four-grating configuration; gain-grating analysis; high-quality diffraction-limited TEM00 mode; output beam; output coupler reflectivity; output pulse energy; polarization distorsions; reflection-grating configuration; self-starting self-pumped phase-conjugate Nd:YAG loop resonator; severe intracavity phase aberrations; single-longitudinal-mode pulse shape; temporal dynamics; transient model; transmission-grating configuration; Diffraction gratings; Interference; Laser excitation; Optical coupling; Optical reflection; Optical resonators; Polarization; Pulse amplifiers; Pulse shaping methods; Reflectivity;
Journal_Title :
Quantum Electronics, IEEE Journal of