Title :
Nonlinear gain suppression in quantum-well lasers due to carrier heating: the roles of carrier energy relaxation, electron-hole interaction, and Auger effect
Author :
Wang, Jian ; Schweizer, Heinz
Author_Institution :
Phys. Inst., Stuttgart Univ., Germany
Abstract :
The influences of carrier energy relaxation and electron-hole interaction on the nonlinear gain coefficient are detailed inspected by a numerical comparison of carrier heating model with classical rate-equation model in a large-signal analysis. It is shown that the nonlinear gain coefficient due to carrier heating is in proportion to an effective carrier energy relaxation time and has a nonlinear relation to the electron-hole energy exchange time. Accordingly, an empirical formula is deduced. In addition, the influence of Auger heating on the modulation dynamics is also considered, which can not be described by a single phenomenological nonlinear gain coefficient. Furthermore, the dependence of the nonlinear gain coefficient on the laser emission wavelength of distributed feedback laser is also demonstrated quantitatively.
Keywords :
Auger effect; carrier relaxation time; distributed feedback lasers; electro-optical modulation; electron-hole recombination; laser theory; quantum well lasers; Auger effect; carrier energy relaxation; carrier heating; carrier heating model; classical rate-equation model; distributed feedback laser; effective carrier energy relaxation time; electron-hole energy exchange time; electron-hole interaction; empirical formula; large-signal analysis; laser emission wavelength; modulation dynamics; nonlinear gain coefficient; nonlinear gain coefficient a; nonlinear gain suppression; nonlinear relation; numerical comparison; quantum-well lasers; single phenomenological nonlinear gain coefficient; Charge carrier processes; Distributed feedback devices; Energy exchange; Equations; Heating; Laser feedback; Laser modes; Quantum well lasers; Radiative recombination; Temperature;
Journal_Title :
Photonics Technology Letters, IEEE