DocumentCode :
1761810
Title :
The Thermal Resistance of High-Power Semiconductor Disk Lasers
Author :
Heinen, Bernd ; Moller, Christoph ; Jandieri, Kakhaber ; Kunert, Bernardette ; Koch, Martin ; Stolz, Wolfgang
Author_Institution :
Dept. of Phys., Philipps-Univ. Marburg, Marburg, Germany
Volume :
51
Issue :
5
fYear :
2015
fDate :
42125
Firstpage :
1
Lastpage :
9
Abstract :
We present a model for the simulation of the thermal resistance of flip-chip bonded vertical-external-cavity surface-emitting lasers based on the finite-element method. Therefore, we take on and deepen precedent models with regard to three modifications. Our model for the first time comprises the complete heat removal, incorporates temperature-dependent heat conductivity of the diamond heat spreader and features the consideration of the exact pump distribution. The simulations are accompanied by an extensive experimental investigation of four gain chips. Thereby, a high accuracy of our simulations is confirmed. In addition, we use our model in order to investigate the influence of a ternary distributed Bragg reflector, which lacks in pump light absorption and the subsequent additional heating. Recently, this model was used to push the output power of vertical-external-cavity surface-emitting lasers beyond 100 W.
Keywords :
diamond; distributed Bragg reflectors; finite element analysis; laser beams; optical pumping; semiconductor lasers; surface emitting lasers; thermal conductivity; thermal resistance; thermo-optical effects; complete heat removal; diamond heat spreader; finite-element method; flip-chip bonded vertical-external-cavity surface-emitting lasers; gain chips; high-power semiconductor disk lasers; output power; pump distribution; pump light absorption; temperature-dependent heat conductivity; ternary distributed Bragg reflector; thermal resistance simulation; Conductivity; Distributed Bragg reflectors; Heat pumps; Heat sinks; Heating; Thermal resistance; Thermal resistance; finite element analysis; semiconductor lasers; surface emitting lasers; vertical-external-cavity surface-emitting laser (VECSEL);
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/JQE.2015.2412458
Filename :
7058413
Link To Document :
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