Maxwell equations in Fourier space: fast-converging formulation for diffraction by arbitrary shaped, periodic, anisotropic media
Уравнения Максвелла в пространстве Фурье: быстро сходящаяся формулировка для дифракции на периодических анизотропных средах произвольной формы
2001-11-01
SCID: 54.1/ug7zc76m
Discuss with AI
Maxwell equations in Fourier spacecrossed gratingsdiffraction by periodic anisotropic mediafast-Fourier-factorization (FFF)modal method
Figures from the paper
Abstract (AI)
We establish the most general differential equations that are satisfied by the Fourier components of the electromagnetic field diffracted by an arbitrary periodic anisotropic medium. The equations are derived by use of the recently published fast-Fourier-factorization (FFF) method, which ensures fast convergence of the Fourier series of the field. The diffraction by classic isotropic gratings arises as a particular case of the derived equations; the case of anisotropic classic gratings was published elsewhere. The equations can be resolved either through classic differential theory or through the modal method for particular groove profiles. The new equations improve both methods in the same way. Crossed gratings, among which are grids and two-dimensional arbitrarily shaped periodic surfaces, appear as particular cases of the theory, as do three-dimensional photonic crystals. The method can be extended to nonperiodic media through the use of a Fourier transform.
Key Findings
1
Derived the most general differential equations for Fourier components of electromagnetic fields diffracted by arbitrary periodic anisotropic media.
2
Equations are solvable by both classic differential theory and the modal method for particular groove profiles, improving both methods.
3
Method is extendable to nonperiodic media via the Fourier transform.
4
The formulation reduces to classic isotropic grating diffraction as a special case (anisotropic classic gratings reported elsewhere).
5
Theory covers crossed gratings (including grids and 2D arbitrarily shaped periodic surfaces) and 3D photonic crystals as particular cases.
6
Used the fast-Fourier-factorization (FFF) method to ensure fast convergence of the field's Fourier series.
Research Object
Electromagnetic field diffracted by an arbitrary periodic anisotropic medium
Research Subject
General differential equations in Fourier space (using fast-Fourier-factorization) governing the Fourier components of the diffracted electromagnetic field, enabling fast-converging formulations for diffraction by arbitrary-shaped periodic anisotropic media
Publication Details
Publication Date
2001-11-01
Journal
Publisher
ISSN
Access Type
Author Information
Download PDF
Subscribe to digest