• DocumentCode
    1430994
  • Title

    Theoretical Investigation of Anisotropic Gain Mechanisms in InGaAsP-Based 1.5- \\mu m Quantum Dash Lasers

  • Author

    Healy, Sorcha B. ; Reilly, Eoin P O

  • Author_Institution
    Tyndall Nat. Inst., Cork, Ireland
  • Volume
    46
  • Issue
    5
  • fYear
    2010
  • fDate
    5/1/2010 12:00:00 AM
  • Firstpage
    742
  • Lastpage
    753
  • Abstract
    We examine the electronic structure and optical properties of 1.5-μm InAs/InGaAsP/InP quantum dash-in-a-well (DWELL) and dash-in-a-barrier (DBAR) lasers. Using 1-D and 3-D k.p calculations, we show that the electron states are not confined to the dash layer in the DWELL structures and are poorly confined in the DBAR case, due to the small conduction band offset in InGaAsP systems. The built-in strain induces a large HH-LH splitting, resulting in a significant reduction in the calculated valence band density of states (DOS). Coupled together, these properties can be engineered to give a nearly symmetric conduction and valence band DOS within 0.1 eV of the band edge. The calculated gain due to light polarized along the TE(110) and TE(1-10) directions is anisotropic, with the degree of anisotropy dependent on the dash height and the area density of the dashes. We conclude that the dashes can provide a high modal gain with reduced transparency and threshold carrier density but similar threshold current density compared to equivalent quantum well devices.
  • Keywords
    III-V semiconductors; gallium arsenide; indium compounds; quantum dash lasers; InAs-InGaAsP-InP; InGaAsP; anisotropic gain mechanisms; carrier density; current density; density of states; electron states; electron volt energy 0.1 eV; quantum dash lasers; quantum dash-in-a-barrier lasers; quantum dash-in-a-well lasers; quantum well devices; wavelength 1.5 μm; Anisotropic magnetoresistance; Capacitive sensors; Charge carrier density; Electron optics; Geometrical optics; Indium phosphide; Laser theory; Optical polarization; Quantum dots; Threshold current; 1.55 $mu{hbox {m}}$; Lasers; quantum dashes;
  • fLanguage
    English
  • Journal_Title
    Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9197
  • Type

    jour

  • DOI
    10.1109/JQE.2009.2037338
  • Filename
    5423313