• DocumentCode
    1169425
  • Title

    Modeling ultrashort field dynamics in surface emitting lasers by using finite-difference time-domain method

  • Author

    Bahl, Mayank ; Panoiu, Nicolae C. ; Osgood, Richard M., Jr.

  • Author_Institution
    RSoft Design Group, Ossining, NY, USA
  • Volume
    41
  • Issue
    10
  • fYear
    2005
  • Firstpage
    1244
  • Lastpage
    1252
  • Abstract
    An approach based on the finite-difference time-domain (FDTD) method is developed for simulating the dynamics of vertical-cavity surface-emitting lasers (VCSELs). The material response is incorporated in our FDTD algorithm by the effective semiconductor Bloch equations, and its effects are accounted for through a resonant polarization term in the Maxwell´s equations. Moreover, nonlinear gain saturation is incorporated through a gain suppression factor in the equation governing the dynamics of the resonant polarization. This approach is verified by modeling a λ-cavity VCSEL, with a multiple quantum-well (MQW) gain region; the corresponding continuous-wave operation is obtained at the expected wavelength. The dynamics of ultrashort pulses generated by a monolithic passively mode-locked one-dimensional VCSEL with a MQW gain region and a single QW saturable absorber are studied and it is demonstrated that a stable mode-locked pulse train can be generated. It is also demonstrated that with our FDTD approach subcycle temporal precision can be achieved. The need for this fine temporal resolution is established by investigating pulse propagation through the semiconductor saturable absorber. Fine features of the spatial profile of the mode-locked pulses are also examined within this approach. This knowledge of the fine spatial features is then used for lowering the current threshold through gain structure optimization. Various approaches for the reduction of the total simulation time are also discussed.
  • Keywords
    Maxwell equations; finite difference time-domain analysis; laser cavity resonators; laser mode locking; light polarisation; optical pulse generation; optical saturable absorption; quantum well lasers; semiconductor device models; surface emitting lasers; FDTD algorithm; Maxwell equations; VCSEL cavity modeling; continuous-wave operation; current threshold; effective semiconductor Bloch equations; finite-difference time-domain method; gain structure optimization; gain suppression factor; laser field dynamics modeling; material response; mode-locked pulse train; monolithic laser; multiple quantum-well gain; nonlinear gain saturation; one-dimensional VCSEL; passive mode-locking; pulse propagation; resonant polarization; saturable absorber; spatial pulse profile; stable pulse train; surface emitting lasers; temporal precision; temporal resolution; ultrashort field dynamics; ultrashort pulses; vertical-cavity surface emitting lasers; Finite difference methods; Laser modes; Maxwell equations; Nonlinear equations; Quantum well devices; Resonance; Semiconductor lasers; Surface emitting lasers; Time domain analysis; Vertical cavity surface emitting lasers; Finite-difference time-domain (FDTD) method; passive modelocking; saturable absorber; vertical-cavity surface-emitting lasers (VCSELs);
  • fLanguage
    English
  • Journal_Title
    Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9197
  • Type

    jour

  • DOI
    10.1109/JQE.2005.855028
  • Filename
    1510792