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Analysis of differential gain in InGaAs-InGaAsP compressive and tensile strained quantum-well lasers and its application for estimation of high-speed modulation limit
45
Citations
33
References
1993
Year
EngineeringLaser ScienceLaser ApplicationsLaser MaterialMqw LasersHigh-power LasersOptical AmplifierSemiconductor LasersDifferential GainPhotonicsQuantum SciencePhysicsHigh-speed Modulation LimitQuantum DeviceIngaas-ingaasp CompressiveQuantum-well LasersQuantum TechnologyLaser GainApplied PhysicsQuantum Photonic DeviceOptoelectronics
A simplified model that furnishes an intuitive insight for the change in quantum-well (QW) laser gain due to QW strain and quantum confinement is presented. Differential gain for InGaAs-InGaAsP compressive and tensile strained multi-quantum-well (MQW) lasers is studied using the model. The comparison between the calculated and experimental results for lattice-matched and compressive strained MQW lasers shows that this model also gives quantitatively reasonable results. It is found that the variance-band barrier height strongly affects the differential gain, especially for compressively strained MQW lasers. The tensile strained MQW lasers are found to have quite high differential gain, due to the large dipole matrix element for the electron-light-hole transition, in spite of the large valence-band state density. Furthermore, a great improvement in the differential gain is expected by modulation p doping in the tensile strained MQW lasers. The ultimate modulation bandwidth for such lasers is studied using the above results.< <ETX xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">></ETX>
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