DocumentCode
1139676
Title
Saturation and excited-state absorption in neodymium laser glass
Author
Vance, Miles E.
Author_Institution
Corning Glass Works, Raleigh, NC
Volume
6
Issue
5
fYear
1970
fDate
5/1/1970 12:00:00 AM
Firstpage
249
Lastpage
253
Abstract
The existence of excited-state absorption of 1.06-μ radiation in transitions from the upper laser level upward (4
-4
) is suggested by the ground-state absorption spectrum of Nd3+in soda-lime glass. The strength of this absorption was measured as follows. In the unpumped material the upper laser level was populated at high temperatures (600 and 783°K) by saturating the laser transition with an intense 1.06-μ probe laser beam. The residual absorption was attributed to4
-4
transitions. The steady-state saturation behavior was calculated on the assumption of rapid spectral cross relaxation, using spectroscopic data appropriate to the elevated temperature. Comparison of theoretical and experimental saturation behavior yielded an effective excited-state absorption cross section equal to one-third the gain cross section of the laser transition. This sizable value may be expected to have a significant adverse effect on laser threshold and efficiency. Also, it provides a mechanism for internal fracture such that the fracture threshold decreases with increasing neodymium concentration and with increasing temperature.
-4
) is suggested by the ground-state absorption spectrum of Nd3+in soda-lime glass. The strength of this absorption was measured as follows. In the unpumped material the upper laser level was populated at high temperatures (600 and 783°K) by saturating the laser transition with an intense 1.06-μ probe laser beam. The residual absorption was attributed to4
-4
transitions. The steady-state saturation behavior was calculated on the assumption of rapid spectral cross relaxation, using spectroscopic data appropriate to the elevated temperature. Comparison of theoretical and experimental saturation behavior yielded an effective excited-state absorption cross section equal to one-third the gain cross section of the laser transition. This sizable value may be expected to have a significant adverse effect on laser threshold and efficiency. Also, it provides a mechanism for internal fracture such that the fracture threshold decreases with increasing neodymium concentration and with increasing temperature.Keywords
Absorption; Glass; Laser beams; Laser excitation; Laser theory; Laser transitions; Neodymium; Optical materials; Probes; Temperature;
fLanguage
English
Journal_Title
Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
0018-9197
Type
jour
DOI
10.1109/JQE.1970.1076448
Filename
1076448
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