Title :
Continues-wave single-mode operation of quantum-dot photonic-crystal 1300 nm VCSEL
Author :
Czyszanowski, Tomasz ; Wasiak, Michai ; Sarzala, Robert P. ; Dems, Maciej ; Nakwaski, Wlodzimierz ; Panajotov, Krassimir
Author_Institution :
Inst. of Phys., Tech. Univ. of Lodz, Lodz, Poland
Abstract :
The quantum-dot (QD) photonic-crystal (PhC) VCSEL has unique "endlessly single-mode" property enables reduction of the threshold current, an increase in emitted power in the single mode regime and very narrow spectral linewidth, which makes it an excellent candidate for application in high data rate networks. This paper extends our previous analyses of PhC VCSELs in which we determined the preferential direction of the light emission assuring high quality of the light beam, the PhC parameters contributing to high modal gain and to single mode operation. To fully reflect the complexity of the phenomena taking place in cw laser operation, a self-consistent model comprising optical, thermal, electrical and recombination submodels has been applied to compare threshold characteristics to the Oxide-Confined VCSEL and the PhC VCSEL. Here we extend our analysis by application of the over-threshold model to analyze the slope efficiency, maximal emitted power in the single-mode regime of the QD PhC VCSEL.
Keywords :
laser beams; photonic crystals; quantum dot lasers; surface emitting lasers; continues-wave single-mode operation; high-data rate networks; narrow spectral linewidth; quantum-dot photonic-crystal VCSEL; self-consistent model; single mode regime; threshold characteristics; wavelength 1300 nm; Bit rate; Etching; Laser beams; Optical interconnections; Photonic crystals; Physics; Quantum dots; Stimulated emission; Threshold current; Vertical cavity surface emitting lasers;
Conference_Titel :
Lasers and Electro-Optics 2009 and the European Quantum Electronics Conference. CLEO Europe - EQEC 2009. European Conference on
Conference_Location :
Munich
Print_ISBN :
978-1-4244-4079-5
Electronic_ISBN :
978-1-4244-4080-1
DOI :
10.1109/CLEOE-EQEC.2009.5192793