Computational electromagneticsComputational electromagnetics (CEM), computational electrodynamics or electromagnetic modeling is the process of modeling the interaction of electromagnetic fields with physical objects and the environment. It typically involves using computer programs to compute approximate solutions to Maxwell's equations to calculate antenna performance, electromagnetic compatibility, radar cross section and electromagnetic wave propagation when not in free space.
Cristal photoniqueLes cristaux photoniques sont des structures périodiques de matériaux diélectriques, semi-conducteurs ou métallo-diélectriques modifiant la propagation des ondes électromagnétiques de la même manière qu'un potentiel périodique dans un cristal semi-conducteur affecte le déplacement des électrons en créant des bandes d'énergie autorisées et interdites. Les longueurs d'onde pouvant se propager dans le cristal se nomment des modes dont la représentation énergie-vecteur d'onde forme des bandes.
Eigenmode expansionEigenmode expansion (EME) is a computational electrodynamics modelling technique. It is also referred to as the mode matching technique or the bidirectional eigenmode propagation method (BEP method). Eigenmode expansion is a linear frequency-domain method. It offers very strong benefits compared with FDTD, FEM and the beam propagation method for the modelling of optical waveguides, and it is a popular tool for the modelling linear effects in fiber optics and silicon photonics devices.
Electromagnetic wave equationThe electromagnetic wave equation is a second-order partial differential equation that describes the propagation of electromagnetic waves through a medium or in a vacuum. It is a three-dimensional form of the wave equation. The homogeneous form of the equation, written in terms of either the electric field E or the magnetic field B, takes the form: where is the speed of light (i.e. phase velocity) in a medium with permeability μ, and permittivity ε, and ∇2 is the Laplace operator.