DocumentCode :
1135555
Title :
HOT-VELM: A Comprehensive and Efficient Code for Fully Vectorial and 3-D Hot-Cavity VCSEL Simulation
Author :
Debernardi, Perluigi
Author_Institution :
IEIIT-CNR, Politec. di Torino, Torino, Italy
Volume :
45
Issue :
8
fYear :
2009
Firstpage :
979
Lastpage :
992
Abstract :
A model to simulate vertical-cavity surface-emitting laser (VCSEL) operation above threshold is presented. The power-current (PI) curves are computed while accounting for mode competition arising from spatial hole-burning and temperature profiles. The latter affect many laser parameters, such as the gain spectra and the optical modes, which change their shapes and wavelengths during operation. The aim of this comprehensive model is to describe the details of VCSEL operation above threshold in non circularly symmetric geometries by preserving at the same time computational efficiency. The optical treatment is vectorial, using the in-house developed three dimensional (3-D) code. The model is based on a solution of the rate equations for field-carrier interactions. Similarly to the mature vectorial optical treatment, the numerical efficiency is achieved by expanding all the involved 3-D variables (current profiles, carrier densities, temperature and optical fields) in basis of simple analytical functions. The model is tested on a structure which has an epitaxial design based on a real device and a transverse geometry suitable to put in evidence all its 3-D features. In particular, the carrier expansion technique is validated by comparison with the commonly used carrier meshing procedure. The heating mechanisms are illustrated in detail and the effects which rule the power rollover and laser turn-off are compared and discussed within an improved injection model.
Keywords :
laser modes; optical hole burning; semiconductor lasers; surface emitting lasers; HOT-VELM; VCSEL; carrier expansion technique; carrier meshing; gain spectra; mode competition; optical modes; spatial hole-burning; temperature profiles; vertical-cavity surface-emitting laser; Computational modeling; Geometrical optics; Laser modes; Laser transitions; Optical surface waves; Shape; Solid modeling; Surface emitting lasers; Temperature; Vertical cavity surface emitting lasers; Current injection model; current leakage; power rollover; semiconductor laser modeling; thermal model; vertical-cavity surface-emitting laser (VCSEL);
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/JQE.2009.2016762
Filename :
5165102
Link To Document :
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