Title :
Finite element method using port truncation by perfectly matched layer boundary conditions for optical waveguide discontinuity problems
Author :
Tsuji, Yasuhide ; Koshiba, Masanori
Author_Institution :
Div. of Electron. & Inf. Eng., Hokkaido Univ., Sapporo, Japan
fDate :
3/1/2002 12:00:00 AM
Abstract :
A powerful algorithm based on a finite element method (FEM) is newly formulated for the analysis of waveguide discontinuities. In an earlier approach, FEM was applied to the finite region with discontinuities, and a mode expansion technique was applied to the uniform waveguides that are connected to the input and output ports of finite region. Although, in the present approach, the uniform waveguides are replaced by perfectly matched layer (PML) boundary conditions, it is possible to treat periodically varying waveguide structures such as photonic crystal (PC) waveguides. A combined method of beam propagation method (BPM) and FEM is also shown in such a form that a mode expansion technique is not required. To show the validity and usefulness of the present approach, numerical examples for optical gratings, circuit components based on PC waveguides and optical directional couplers are presented
Keywords :
boundary-value problems; diffraction gratings; finite element analysis; optical directional couplers; optical waveguide theory; photonic band gap; waveguide discontinuities; PC waveguides; circuit components; finite element method; finite region; input ports; mode expansion technique; optical directional couplers; optical gratings; optical waveguide discontinuity problems; output ports; perfectly matched layer boundary conditions; periodically varying waveguide structures; photonic crystal waveguides; port truncation; powerful algorithm; uniform waveguides; waveguide discontinuities; Algorithm design and analysis; Boundary conditions; Finite element methods; Gratings; Optical devices; Optical propagation; Optical waveguides; Perfectly matched layers; Photonic crystals; Waveguide discontinuities;
Journal_Title :
Lightwave Technology, Journal of