Dispersive optical bistability in one-dimensional doped photonic band gap structures
- 1 May 1997
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review E
- Vol. 55 (5) , 6301
- https://doi.org/10.1103/physreve.55.6301
Abstract
We introduce a Kerr-type nonlinear defect layer in the center of one-dimensional photonic band gap structure. For linear parts, we use transfer matrix technique, and for the nonlinear layer, we solve the Maxwell equation numerically. When incident light intensity varies, a typical S-shape curve of the transmitted light intensity is obtained. In this case, an optical bistability is produced by dynamic shifting of the defect mode frequency, not dynamic shifting of the band edge, which is different from the case of periodic nonlinear superlattices. It is also found that when the linear defect mode frequency moves from the center of the gap to the edge of the gap, the threshold intensity needed for the bistability increases rapidly.Keywords
This publication has 15 references indexed in Scilit:
- Thin-film nonlinear optical diodeApplied Physics Letters, 1995
- Optical Limiting and Switching of Ultrashort Pulses in Nonlinear Photonic Band Gap MaterialsPhysical Review Letters, 1994
- The photonic band edge optical diodeJournal of Applied Physics, 1994
- Combined distributed feedback and Fabry–Perot structures with a phase-matching layer for optical bistable devicesApplied Physics Letters, 1992
- Dispersive optical bistability in stratified structuresPhysical Review B, 1991
- Optical bistability in semiconductor periodic structuresIEEE Journal of Quantum Electronics, 1991
- Existence of a photonic gap in periodic dielectric structuresPhysical Review Letters, 1990
- Electromagnetic wave propagation in periodic structures: Bloch wave solution of Maxwell’s equationsPhysical Review Letters, 1990
- Full vector wave calculation of photonic band structures in face-centered-cubic dielectric mediaPhysical Review Letters, 1990
- Inhibited Spontaneous Emission in Solid-State Physics and ElectronicsPhysical Review Letters, 1987