Explicit formulation of second and third order optical nonlinearity in the FDTD framework

The finite-difference time-domain (FDTD) method is a flexible and powerful technique for rigorously solving Maxwell’s equations. However, three-dimensional optical nonlinearity in current commercial and research FDTD softwares requires solving iteratively an implicit form of Maxwell’s equations over...

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Bibliographic Details
Published inComputer physics communications Vol. 222; pp. 70 - 83
Main Authors Varin, Charles, Emms, Rhys, Bart, Graeme, Fennel, Thomas, Brabec, Thomas
Format Journal Article
LanguageEnglish
Published Elsevier B.V 01.01.2018
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Summary:The finite-difference time-domain (FDTD) method is a flexible and powerful technique for rigorously solving Maxwell’s equations. However, three-dimensional optical nonlinearity in current commercial and research FDTD softwares requires solving iteratively an implicit form of Maxwell’s equations over the entire numerical space and at each time step. Reaching numerical convergence demands significant computational resources and practical implementation often requires major modifications to the core FDTD engine. In this paper, we present an explicit method to include second and third order optical nonlinearity in the FDTD framework based on a nonlinear generalization of the Lorentz dispersion model. A formal derivation of the nonlinear Lorentz dispersion equation is equally provided, starting from the quantum mechanical equations describing nonlinear optics in the two-level approximation. With the proposed approach, numerical integration of optical nonlinearity and dispersion in FDTD is intuitive, transparent, and fully explicit. A strong-field formulation is also proposed, which opens an interesting avenue for FDTD-based modelling of the extreme nonlinear optics phenomena involved in laser filamentation and femtosecond micromachining of dielectrics.
ISSN:0010-4655
1879-2944
DOI:10.1016/j.cpc.2017.09.018