Title :
Gain spectra measurement of strained and strain-compensated InGaAsP-AlGaAs laser structures for λ≈800 nm
Author :
Oster, Andrea ; Bugge, F. ; Erbert, Götz ; Wenzel, Hans
Author_Institution :
Ferdinand-Braun Inst. fur Hochstfrequenztech., Berlin, Germany
Abstract :
InGaAsP single quantum wells (QWs) for wavelengths around 800 nm embedded in AlGaAs large optical-cavity waveguide structures are investigated by measuring modal gain spectra and broad-area (BA) laser parameters. The modal net-gain spectra are determined by the variable stripe-length method using current injection. Thick (18 nm) and nearly unstrained QWs show gain spectra without resolved subband structures. The modal gain in TE-polarization is twice as high as in TM-polarization. For thinner (13 nm) compressively strained (0.6%) QWs, the modal gain in TM-polarization and the transparency current density are lowered. For highly strained (1%) QWs, strain compensation by tensily strained GaAsP barriers improves the device performance. BA lasers with 5-nm-thick QWs with strain compensation show a 10% higher differential efficiency in comparison to structures without strain compensation
Keywords :
III-V semiconductors; aluminium compounds; current density; gallium arsenide; indium compounds; laser beams; light polarisation; optical variables measurement; quantum well lasers; waveguide lasers; 5 nm; 800 nm; AlGaAs; AlGaAs large optical-cavity waveguide structures; GaAsP barriers; InGaAsP; InGaAsP single quantum well; InGaAsP-AlGaAs; InGaAsP-AlGaAs laser structures; TE-polarization; TM-polarization; broad-area laser parameters; compressively strained quantum wells; current injection; differential efficiency; gain spectra; gain spectra measurement; modal gain; modal gain spectra; modal net-gain spectra; strain compensation; strain-compensated laser; strained laser; subband structures; transparency current density; variable stripe-length method; wavelengths; Capacitive sensors; Current density; Diode lasers; Gain measurement; Laser excitation; Optical pumping; Optical resonators; Optical waveguides; Pump lasers; Quantum well lasers;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/2944.788428