Title :
1.55-μm InP-lattice-matched VCSELs with AlGaAsSb-AlAsSb DBRs
Author :
Nakagawa, S. ; Hall, E. ; Almuneau, G. ; Kim, J.K. ; Buell, D.A. ; Kroemer, H. ; Coldren, Larry A.
Author_Institution :
Dept. of Electr. & Comput. Eng. & Mater., California Univ., Santa Barbara, CA, USA
Abstract :
We review the design, fabrication, and characterization of 1.55-μm lattice-matched vertical-cavity surface-emitting lasers, operating continuous wave up to 88°C. For one embodiment, the threshold current is 800 μA, the differential quantum efficiency is 23%, and the maximum output power is more than 1 mW at 20°C and 110 μW at 80°C. The basic structure consists of AlAsSb-AlGaAsSb mirrors, which provide both high reflectivity and an InP-lattice-matched structure. The quaternary mirrors have poor electrical and thermal conductivities, which can raise the device temperature. However, a double-intracavity-contacted structure along with thick n-type InP cladding layers circumvents these drawbacks and finally leads to an excellent performance. The measured voltage and thermal impedances are much lower for the intracavity-contacted device than an air-post structure in which current is injected through the Sb-based quaternary mirror. The structure utilizes an undercut aperture for current and optical confinement. The aperture reduces scattering loss at the etched mirror and contributes to high differential efficiency and low threshold current density
Keywords :
III-V semiconductors; distributed Bragg reflector lasers; indium compounds; infrared sources; laser mirrors; laser transitions; optical design techniques; optical fabrication; semiconductor lasers; surface emitting lasers; 1 mW; 1.55 mum; 110 muW; 20 C; 80 C; 800 muA; 88 C; AlAsSb-AlGaAsSb; AlAsSb-AlGaAsSb mirrors; AlGaAsSb-AlAsSb DBR lasers; InP; InP cladding layers; InP-lattice-matched VCSEL; InP-lattice-matched structure; Sb-based quaternary mirror; air-post structure; continuous wave; device temperature; differential quantum efficiency; double-intracavity-contacted structure; etched mirror; high differential efficiency; high reflectivity; intracavity-contacted device; lattice-matched vertical-cavity surface-emitting lasers; low threshold current density; maximum output power; optical confinement; optical design; optical fabrication; quaternary mirrors; thermal impedances; threshold current; Apertures; Mirrors; Optical design; Optical device fabrication; Optical scattering; Optical surface waves; Surface waves; Thermal conductivity; Threshold current; Vertical cavity surface emitting lasers;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/2944.954134