DocumentCode
1061023
Title
Effects of near-resonance self-absorption on CO laser kinetic modeling
Author
Lacina, William B.
Author_Institution
Northrop Research and Technology Center, Hawthorne, CA, USA
Volume
11
Issue
6
fYear
1975
fDate
6/1/1975 12:00:00 AM
Firstpage
297
Lastpage
302
Abstract
Resonance self-absorption from overlapping lines is an important pressure-dependent mechanism for theoretical analysis of a high-pressure CO laser. Although the effect on total optical output efficiency, kinetic heating rate, and transient time scales is small, predicted output spectral distributions can change significantly. Results of calculations will be presented which show that output power is redistributed to higher vibrational bands with more unique
characteristics. Previous analytical work on CO laser kinetics produced distributions that lay one or two υ bands lower than what is observed, and was incapable of explaining anomalous spectra which often show certain transitions missing. Qualitative comparisons with experiment indicate that these effects occur at much lower pressures than theoretically predicted by this analysis. This suggests that further work will be required to correctly describe the mechanism of optical broadening in a CO laser medium.
characteristics. Previous analytical work on CO laser kinetics produced distributions that lay one or two υ bands lower than what is observed, and was incapable of explaining anomalous spectra which often show certain transitions missing. Qualitative comparisons with experiment indicate that these effects occur at much lower pressures than theoretically predicted by this analysis. This suggests that further work will be required to correctly describe the mechanism of optical broadening in a CO laser medium.Keywords
Degradation; Kinetic theory; Laser modes; Laser theory; Laser transitions; Optical resonators; Optical sensors; Plasma temperature; Power generation; Temperature sensors;
fLanguage
English
Journal_Title
Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
0018-9197
Type
jour
DOI
10.1109/JQE.1975.1068609
Filename
1068609
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