Large omnidirectional band gaps in metallodielectric photonic crystals
- 15 October 1996
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 54 (16) , 11245-11251
- https://doi.org/10.1103/physrevb.54.11245
Abstract
Using a finite-difference time-domain method, we study the band-structure and transmission properties of three-dimensional metallodielectric photonic crystals. The metallodielectric crystals are modeled as perfect electrical conducting objects embedded in dielectric media. We investigate two different lattice geometries: the face-centered-cubic (fcc) lattice and the diamond lattice. Partial gaps are predicted in the fcc lattice, in excellent agreement with recent experiments. Complete gaps are found in a diamond lattice of isolated metal spheres. The gaps appear between the second and third bands and their sizes can be larger than 60% when the radius of the spheres exceeds 21% of the cubic unit cell size. A possible fabrication scheme for this structure is proposed and transmission calculations are performed. © 1996 The American Physical Society.Keywords
This publication has 16 references indexed in Scilit:
- 3D Wire Mesh Photonic CrystalsPhysical Review Letters, 1996
- Metallic photonic band-gap materialsPhysical Review B, 1995
- Large electromagnetic stop bands in metallodielectric photonic crystalsApplied Physics Letters, 1995
- Photonic Band Gaps: Noncommuting Limits and the “Acoustic Band”Physical Review Letters, 1995
- Photonic band gaps for arrays of perfectly conducting cylindersPhysical Review E, 1995
- Experimental and theoretical results for a two-dimensional metal photonic band-gap cavityApplied Physics Letters, 1994
- Photonic Band StructuresJournal of Modern Optics, 1994
- Time-domain modeling in electromagneticsJournal of Electromagnetic Waves and Applications, 1994
- Analysis of the numerical error caused by the stair-stepped approximation of a conducting boundary in FDTD simulations of electromagnetic phenomenaIEEE Transactions on Antennas and Propagation, 1991
- Absorbing Boundary Conditions for the Finite-Difference Approximation of the Time-Domain Electromagnetic-Field EquationsIEEE Transactions on Electromagnetic Compatibility, 1981