Title :
Time-Domain Traveling-Wave Analysis of the Multimode Dynamics of Quantum Dot Fabry–Perot Lasers
Author :
Gioannini, Mariangela ; Bardella, Paolo ; Montrosset, Ivo
Author_Institution :
Dipt. di Elettron. e Telecomun., Politec. di Torino, Turin, Italy
Abstract :
In this paper, we investigate with numerical simulations the rich multimode dynamics of quantum dot Fabry-Perot lasers. We have used a time-domain traveling-wave approach including the electron and hole carrier dynamics in the various quantum dot confined states, the inhomogeneous broadening of the complex gain spectrum, the polarization dynamics, and the effect of the carrier-photon interaction in the cavity. The role of the various nonlinear interaction mechanism on the broadening of optical spectrum of the quantum dot laser has been investigated, and the main parameters responsible for the phase locking between the longitudinal modes have been identified. We show that in some cases, it is possible to obtain pulses after simulating the propagation of the laser output field in a dispersive medium. Many of the obtained simulation results are in good agreement with the experiments reported in the literature.
Keywords :
Fabry-Perot resonators; laser cavity resonators; laser mode locking; light polarisation; quantum dot lasers; time-domain analysis; carrier-photon interaction; complex gain spectrum; dispersive medium; electron carrier dynamics; hole carrier dynamics; inhomogeneous broadening; laser output field; longitudinal modes; multimode dynamics; nonlinear interaction mechanism; numerical simulations; phase locking; polarization dynamics; quantum dot Fabry-Perot lasers; quantum dot confined states; time-domain traveling-wave analysis; Laser mode locking; Mathematical model; Nonlinear optics; Quantum cascade lasers; Quantum dot lasers; Fabry- Perot lasers; Fabry???Perot lasers; Multimode dynamics; Quantum Dot semiconductor lasers; Quantum dot semiconductor lasers; Time Domain Traveling Wave simulations; mode locking; multimode dynamics; time domain traveling wave simulations;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2015.2425537