Title :
An 8.2 J phase-conjugate solid-state laser coherently combining eight parallel amplifiers
Author :
Sumida, David S. ; Jones, Cris D. ; Rockwell, David A.
Author_Institution :
Opt. Phys. Lab., Hughes Res. Labs., Malibu, CA, USA
fDate :
11/1/1994 12:00:00 AM
Abstract :
We describe a phase-conjugate master oscillator-power amplifier configuration in which as many as eight parallel flashlamp-pumped Cr:Nd:GSGG amplifiers and four parallel CD*A frequency doubling crystals were coherently combined. Operating at a pulse repetition frequency of 1.25 Hz, we demonstrated an output energy of 8.2 J at 1 μm and 4.4 J at 530 nm for a 54% frequency-doubling efficiency. This effort represents the highest reported output energy achieved using coherent coupling via phase conjugation. In subsequent experiments at a pulse repetition frequency of 5 Hz, we produced ~22 W of 1.06 μm average power with a beam quality that was ~2.5 times diffraction-limited. The observed far-field intensity profile indicates that we achieved effective and consistent compensation of optical-path length differences among the multiple parallel amplifiers and frequency-doubling crystals
Keywords :
chromium; flash lamps; gadolinium compounds; garnets; neodymium; optical harmonic generation; optical phase conjugation; optical pumping; scandium compounds; solid lasers; 1 mum; 1.06 mum; 22 W; 4.4 J; 530 nm; 8.2 J; Cr:Nd:GSGG amplifiers; GdScGG:Cr,Nd; GdScGa5O12:Cr,Nd; average power; beam quality; coherently combining; diffraction-limited; far-field intensity profile; frequency-doubling crystals; frequency-doubling efficiency; multiple parallel amplifiers; optical-path length differences; output energy; parallel CD*A frequency doubling crystals; parallel amplifiers; parallel flashlamp-pumped; phase conjugation; phase-conjugate master oscillator-power amplifier configuration; phase-conjugate solid-state laser; pulse repetition frequency; Crystals; Frequency; Optical amplifiers; Optical diffraction; Optical harmonic generation; Optical pulses; Pulse amplifiers; Semiconductor optical amplifiers; Solid lasers; Stimulated emission;
Journal_Title :
Quantum Electronics, IEEE Journal of