DocumentCode :
88010
Title :
Joule-Class 940-nm Diode Laser Bars for Millisecond Pulse Applications
Author :
Crump, P. ; Frevert, C. ; Ginolas, A. ; Knigge, S. ; Maabdorf, A. ; Lotz, J. ; Fassbender, W. ; Neukum, J. ; Korner, J. ; Topfer, T. ; Pranovich, A. ; Divoky, M. ; Lucianetti, A. ; Mocek, T. ; Ertel, K. ; De Vido, M. ; Erbert, G. ; Trankle, G.
Author_Institution :
Ferdinand-Braun-Inst., Leibniz-Inst. fur Hochstfrequenztechnik, Berlin, Germany
Volume :
27
Issue :
15
fYear :
2015
fDate :
Aug.1, 1 2015
Firstpage :
1663
Lastpage :
1666
Abstract :
The use of long resonators (for improved thermal and electrical resistance) and advanced facet passivation (for high power) is shown to enable Joule-class pulse emission from single passively cooled 1-cm diode laser bars emitting at 940 nm. Bars on CS-mount deliver pulse energy of 1 J at 60% power conversion efficiency within a 7-nm spectral window, under quasi-continuous wave conditions (1.2 ms 10 Hz). Robustness of device performance is confirmed via burn-in and multisite testing. Joule-per-bar performance is also maintained for conduction cooled monolithic stacked arrays, adapted for bars with long resonators. Although these packages only cool the laser bar via their rear edge, peak power, lateral far field, and spectral width remain consistent with the requirements for pumping solid state lasers and scale as predicted with self-heating. An energy density >10 J/cm2 is delivered from the stack surface, for brightness >3 MW/(cm2-sr).
Keywords :
laser cavity resonators; optical pulse generation; optical testing; passivation; semiconductor laser arrays; Joule-class diode laser bars; Joule-class pulse emission; advanced facet passivation; bandwidth 10 Hz; brightness; burn-in testing; conduction cooled monolithic stacked arrays; electrical resistance; energy density; lateral far field; long resonators; millisecond pulse applications; multisite testing; peak power; power conversion efficiency; quasicontinuous wave conditions; rear edge; self-heating; single passively cooled diode laser bars; solid state laser pumping; spectral width; thermal resistance; time 1.2 ms; wavelength 940 nm; Bars; Diode lasers; Optical resonators; Packaging; Power generation; Resistance; Testing; Semiconductor laser arrays; YAG lasers; cryogenics; power conversion; pulse power systems; pumps;
fLanguage :
English
Journal_Title :
Photonics Technology Letters, IEEE
Publisher :
ieee
ISSN :
1041-1135
Type :
jour
DOI :
10.1109/LPT.2015.2434095
Filename :
7117367
Link To Document :
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