• DocumentCode
    1448863
  • Title

    Comparative Study of FDTD-Adopted Numerical Algorithms for Kerr Nonlinearities

  • Author

    Maksymov, Ivan S. ; Sukhorukov, Andrey A. ; Lavrinenko, Andrei V. ; Kivshar, Yuri S.

  • Author_Institution
    Nonlinear Phys. Centre, Australian Nat. Univ., Canberra, ACT, Australia
  • Volume
    10
  • fYear
    2011
  • fDate
    7/3/1905 12:00:00 AM
  • Firstpage
    143
  • Lastpage
    146
  • Abstract
    Accurate finite-difference time-domain (FDTD) modeling of optical pulse propagation in nonlinear media usually implies the use of auxiliary differential equation (ADE) techniques. The updating of electric field in full-vectorial 3-D ADE FDTD modeling of the optical Kerr effect and two-photon absorption in optical media is proceeded conventionally through the iterative solution of nonlinear algebraic equations. Here, we study three approaches for the field update including simple noniterative explicit schemes. By comparing them to the analytical results for optical pulse propagation in long nonlinear media (nonlinear phase incursion for the pump wave of about π radians), we demonstrate convincingly that simple noniterative FDTD updating schemes, which are commonly believed to be inaccurate and unstable, produce accurate results and drastically speed up the computation as compared to ADE approaches. Such schemes can significantly reduce the CPU time for nonlinear computations, especially in 3-D models.
  • Keywords
    differential equations; finite difference time-domain analysis; iterative methods; light propagation; nonlinear equations; nonlinear media; optical Kerr effect; CPU time; FDTD-adopted numerical algorithms; Kerr nonlinearities; auxiliary differential equation techniques; electric field; finite-difference time-domain modeling; full-vectorial 3D ADE FDTD modeling; iterative solution; noniterative explicit schemes; nonlinear algebraic equations; nonlinear media; optical Kerr effect; optical media; optical pulse propagation; two-photon absorption; Electric fields; Equations; Finite difference methods; Mathematical model; Nonlinear optics; Optical pulses; Time domain analysis; Finite-difference time domain (FDTD); four-wave mixing (FWM); nonlinearity; optical Kerr effect;
  • fLanguage
    English
  • Journal_Title
    Antennas and Wireless Propagation Letters, IEEE
  • Publisher
    ieee
  • ISSN
    1536-1225
  • Type

    jour

  • DOI
    10.1109/LAWP.2011.2114319
  • Filename
    5712157