Title :
Modulation resonance enhancement in SCH quantum-well lasers with an external Bragg reflector
Author :
Premaratne, Malin ; Lowery, Arthur J.
Author_Institution :
Dept. of Electr. & Electron. Eng., Melbourne Univ., Parkville, Vic., Australia
fDate :
4/1/1998 12:00:00 AM
Abstract :
The modulation response of a semiconductor laser can be enhanced by coupling it to an external cavity with frequency-selective feedback. This creates a comb of transmission bands where the modulation response is high, at the cavity round-trip frequency and its harmonics. In a previous publication, we related the bandwidths of these bands to the material and structural parameters of a bulk laser. We showed that a nonzero linewidth enhancement factor together with a nonzero intermediate facet reflectivity lead to deep nulls close to the peaks of these transmission bands. This suggests that quantum-well (QW) lasers, which have a low linewidth enhancement factor, may give a better performance than bulk lasers. To test this hypothesis, we have extended our analysis to model QW lasers coupled to a fiber grating. Carrier transport, carrier heating, intraband carrier fluctuations, and nonparabolic band structures are considered. We show that electron carrier transport and amplitude-phase coupling in the separate-confinment-heterostructure (SCH) layer contribute to the nulls in the modulation response. Therefore, the apparent advantage of having a reduced linewidth enhancement factor that we found in our previous analysis cannot be fully realized by using QW lasers
Keywords :
carrier mobility; diffraction gratings; electro-optical modulation; laser cavity resonators; laser feedback; laser theory; quantum well lasers; semiconductor device models; spectral line breadth; QW lasers; SCH quantum-well lasers; amplitude-phase coupling; bulk laser; carrier heating; carrier transport; cavity round-trip frequency; deep nulls; electron carrier transport; external Bragg reflector; external cavity; fiber grating; frequency-selective feedback; harmonics; intraband carrier fluctuations; laser feedback; low linewidth enhancement factor; modulation resonance enhancement; modulation response; nonparabolic band structures; nonzero intermediate facet reflectivity; nonzero linewidth enhancement factor; reduced linewidth enhancement factor; separate-confinment-heterostructure; structural parameters; transmission bands; Bandwidth; Fiber lasers; Frequency; Laser feedback; Laser modes; Optical coupling; Optical materials; Quantum well lasers; Resonance; Semiconductor lasers;
Journal_Title :
Quantum Electronics, IEEE Journal of