• DocumentCode
    1549168
  • Title

    Simulation and Analysis of Dynamic Regimes Involving Ground and Excited State Transitions in Quantum Dot Passively Mode-Locked Lasers

  • Author

    Xu, Tianhong ; Rossetti, Mattia ; Bardella, Paolo ; Montrosset, Ivo

  • Author_Institution
    Dipt. di Elettron. e Telecomun., Politec. di Torino, Turin, Italy
  • Volume
    48
  • Issue
    9
  • fYear
    2012
  • Firstpage
    1193
  • Lastpage
    1202
  • Abstract
    We present a modified version of the multisection delayed differential equation model, for quantum dot passively mode-locked (ML) lasers when competition between ground state (GS) and excited state (ES) ML takes place. The model takes into account the difference in the group velocity of GS and ES fields. Sole GS, sole ES, and dual-state lasing and ML have been studied. The results are verified with time domain traveling wave simulations and compared, when possible, with experimental results. These tests confirmed the reliability of the model. We found that, in two-section ML lasers, GS lasing and mode locking are always more easily established. For instance, GS lasing can be either self-starting or induced by the initial lasing from the higher energy ES. On the contrary, GS lasing tends to inhibit, to a certain extent, the onset of ES lasing, especially at low injection current and low reverse voltage. Moreover, ES shows less potential to achieve stable ML than GS. Based on these findings, we propose proper theoretical explanation of the achieved lasing and ML regimes in realized devices. Especially, we demonstrate a novel stable dual-state ML regime with remarkable enhanced pulse peak power and pulse width.
  • Keywords
    differential equations; laser mode locking; quantum dot lasers; dual-state lasing; excited state; ground state; low injection current; low reverse voltage; multisection delayed differential equation model; quantum dot passively mode-locked lasers; time domain traveling wave simulations; Absorption; Cavity resonators; Computational modeling; Laser mode locking; Mathematical model; Delayed differential equations; mode locked lasers; modeling; quantum dot lasers;
  • fLanguage
    English
  • Journal_Title
    Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9197
  • Type

    jour

  • DOI
    10.1109/JQE.2012.2206372
  • Filename
    6226824