• DocumentCode
    755359
  • Title

    GaAs-AlGaAs quantum cascade lasers: physics, technology, and prospects

  • Author

    Sirtori, Carlo ; Page, Hideaki ; Becker, Cyrille ; Ortiz, Valentin

  • Author_Institution
    Thales Res. & Technol., Orsay, France
  • Volume
    38
  • Issue
    6
  • fYear
    2002
  • fDate
    6/1/2002 12:00:00 AM
  • Firstpage
    547
  • Lastpage
    558
  • Abstract
    In recent years, the performance of GaAs-AlGaAs-based quantum cascade (QC) lasers has improved markedly. These devices are capable of pulsed room temperature operation and can deliver respectable average powers (11 mW at λ~9 μm) operating on a Peltier cooler. This performance has been achieved by the suppression of thermally activated carrier leakage through increases in the heterobarrier band offset. We demonstrate that QC lasers, with wavelengths λ⩾9 μm, can operate using heterostructures encompassing the entire composition range of AlxGa1-xAs, without encountering potential problems-of the satellite X-minima for x>45%. Furthermore, we present particular characteristics of these devices, such as a phonon-limited temperature dependence, electrical and optical self-oscillations, and novel design concepts that exploit this closely lattice matched material system. Finally, we discuss improvements in device fabrication to lower the operating current through a reduction of the area of current injection. Using this technology, devices can be designed to selectively pump the fundamental lateral mode. We, therefore, observe single spatial-mode operation over the entire current range of operation
  • Keywords
    III-V semiconductors; aluminium compounds; gallium arsenide; laser modes; quantum well lasers; semiconductor quantum wells; technological forecasting; 11 mW; 9 micron; GaAs-AlGaAs; GaAs-AlGaAs quantum cascade lasers; Peltier cooler; current injection area; design concepts; device fabrication; electrical self-oscillations; fundamental lateral mode; heterobarrier band offset; lattice matched material system; operating current; optical self-oscillations; output power; phonon-limited temperature dependence; pulsed room temperature operation; selective pumping; single spatial-mode operation; thermally activated carrier leakage suppression; Laser theory; Lattices; Optical design; Optical devices; Optical pumping; Physics; Quantum cascade lasers; Satellites; Temperature dependence; Thermoelectric devices;
  • fLanguage
    English
  • Journal_Title
    Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9197
  • Type

    jour

  • DOI
    10.1109/JQE.2002.1005405
  • Filename
    1005405