• DocumentCode
    983696
  • Title

    Spectral Analysis of 1.55- \\mu m InAs–InP(113)B Quantum-Dot Lasers Based on a Multipopulation Rate Equations Model

  • Author

    Grillot, Frédéric ; Veselinov, Kiril ; Gioannini, Mariangela ; Montrosset, Ivo ; Even, Jacky ; Piron, Rozenn ; Homeyer, Estelle ; Loualiche, Slimane

  • Author_Institution
    Center for High Technol. Mater. (CHTM), Univ. of New Mexico, Albuquerque, NM
  • Volume
    45
  • Issue
    7
  • fYear
    2009
  • fDate
    7/1/2009 12:00:00 AM
  • Firstpage
    872
  • Lastpage
    878
  • Abstract
    In this paper, a theoretical model is used to investigate the lasing spectrum properties of InAs-InP(113)B quantum dot (QD) lasers emitting at 1.55 mum. The numerical model is based on a multipopulation rate equations analysis. Calculations take into account the QD size dispersion as well as the temperature dependence through both the inhomogeneous and the homogeneous broadenings. This paper demonstrates that the model is capable of reproducing the spectral behavior of InAs-InP QD lasers. Especially, this study aims to highlight the transition of the lasing wavelength from the ground state (GS) to the excited state (ES). In order to understand how the QD laser turns on, calculated optical spectra are determined for different cavity lengths and compared to experimental ones. Unlike InAs-GaAs QD lasers emitting at 1.3 mum, it is shown that a continuous transition from the GS to the ES is exhibited because of the large inhomogeneous broadening comparable to the GS and ES lasing energy difference.
  • Keywords
    III-V semiconductors; indium compounds; laser beams; laser cavity resonators; laser theory; laser transitions; optical dispersion; quantum dot lasers; spectral analysis; spectral line broadening; InAs-InP; QD size dispersion; homogeneous broadening; laser cavity; laser excited state; laser ground state; multipopulation rate equation model; optical spectra; quantum-dot lasers; spectral analysis; wavelength 1.3 mum; wavelength 1.55 nm; Equations; Laser modes; Laser theory; Laser transitions; Numerical models; Quantum dot lasers; Quantum mechanics; Quantum well lasers; Spectral analysis; Temperature dependence; Quantum dot (QD); rate equation; semiconductor laser;
  • fLanguage
    English
  • Journal_Title
    Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9197
  • Type

    jour

  • DOI
    10.1109/JQE.2009.2013174
  • Filename
    5037998