Simulation of three-dimensional nanoscale light interaction with spatially dispersive metals using a high order curvilinear DGTD method
DOI10.1016/j.jcp.2018.06.033zbMath1416.65358OpenAlexW2847583610WikidataQ129540745 ScholiaQ129540745MaRDI QIDQ2311624
Jonathan Viquerat, Claire Scheid, Stéphane Lanteri, Nikolai Schmitt
Publication date: 4 July 2019
Published in: Journal of Computational Physics (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/j.jcp.2018.06.033
Maxwell's equationsspatial dispersiondiscontinuous Galerkin time-domain methodnanoplasmonicsisoparametric curvilinear elementsnonlocal Drude model
Finite element, Rayleigh-Ritz and Galerkin methods for initial value and initial-boundary value problems involving PDEs (65M60) Electromagnetic theory (general) (78A25) Quantum hydrodynamics and relativistic hydrodynamics (76Y05)
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- Efficient low-storage Runge-Kutta schemes with optimized stability regions
- A new family of mixed finite elements in \({\mathbb{R}}^ 3\)
- A 3D curvilinear discontinuous Galerkin time-domain solver for nanoscale light-matter interactions
- A DGTD method for the numerical modeling of the interaction of light with nanometer scale metallic structures taking into account non-local dispersion effects
- AN ANALYSIS OF THREE DIFFERENT FORMULATIONS OF THE DISCONTINUOUS GALERKIN METHOD FOR DIFFUSION EQUATIONS
- Gmsh: A 3-D finite element mesh generator with built-in pre- and post-processing facilities
- Finite Element Methods for Maxwell's Equations
- Convergence of a discontinuous Galerkin scheme for the mixed time-domain Maxwell's equations in dispersive media
- Convergence and stability of a discontinuous Galerkin time-domain method for the 3D heterogeneous Maxwell equations on unstructured meshes
- Analysis of a Generalized Dispersive Model Coupled to a DGTD Method with Application to Nanophotonics
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