Calculating Band Structure of 2D Photonic Crystals Using Plane Wave Expansion Method
Implementing Plane Wave Expansion (PWE) Method for Band Structure Computation in Two-Dimensional Photonic Crystals
Explore MATLAB source code curated for "二维光子晶体" with clean implementations, documentation, and examples.
Implementing Plane Wave Expansion (PWE) Method for Band Structure Computation in Two-Dimensional Photonic Crystals
This FDTD-based program calculates bandgaps in 2D photonic crystals, featuring comprehensive electromagnetic field simulations through extended code implementation while maintaining practical usability
This program calculates the band gap of two-dimensional photonic crystals and generates the band gap diagram along with the precise positions and widths of the band gaps using electromagnetic eigenmode analysis and frequency-domain computation methods.
Utilizing MATLAB for calculating band gaps in 2D photonic crystals and creating corresponding diagrams, along with computing energy gaps for two-dimensional phononic crystals (XY mode) and generating graphical representations with algorithm explanations.
This program calculates the transmission characteristics of 2D photonic crystal waveguides specifically for transverse magnetic (TM) modes, featuring specialized numerical methods and visualization tools for comprehensive analysis.
Theoretical simulation and analysis of interference-generated 2D and 3D photonic crystal structures with emphasis on parameter optimization and their impact on final configurations, including code-based implementation approaches for modeling interference patterns and material properties
A MATLAB-based program for calculating TM modes in 2D photonic crystal bent waveguides, with implementation guidance for extending to TE mode computation through structural modifications
MATLAB source code implementing Plane Wave Expansion (PWE) method for calculating band structures of line defects in two-dimensional square lattice photonic crystals
FDTD-based computation of transmission spectra and electromagnetic field distributions for two-dimensional photonic crystals, including algorithm implementation and visualization techniques