Nonlinear optical effects in a two-dimensional photonic crystal containing one-dimensional Kerr defects
- 9 May 2003
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review E
- Vol. 67 (5) , 056604
- https://doi.org/10.1103/physreve.67.056604
Abstract
The nonlinear optical effects induced by a one-dimensional (1D) line defect, made of Kerr material, in a 2D photonic crystal are studied. Comprehensive ab initio numerical simulations based on the finite-difference time-domain method show efficient third-harmonic generation in a photonic crystal waveguide consisting of the 1D defect line. The relationship between the third harmonic generation process and the nonlinear modal properties of the waveguide is discussed. We investigate optical limiting in such a device, that is, control of the transmitted power as a function of the Kerr-induced variation of the refractive index. Power dependent spectral changes in such a device and its use as a frequency selector are also examined.Keywords
This publication has 35 references indexed in Scilit:
- High transmission enhanced Faraday rotation in one-dimensional photonic crystals with defectsIEEE Photonics Technology Letters, 2000
- Theoretical analysis of channel drop tunneling processesPhysical Review B, 1999
- Experimental Demonstration of Guiding and Bending of Electromagnetic Waves in a Photonic CrystalScience, 1998
- Bound states in photonic crystal waveguides and waveguide bendsPhysical Review B, 1998
- Channel Drop Tunneling through Localized StatesPhysical Review Letters, 1998
- High Transmission through Sharp Bends in Photonic Crystal WaveguidesPhysical Review Letters, 1996
- Novel applications of photonic band gap materials: Low-loss bends and high Q cavitiesJournal of Applied Physics, 1994
- Photonic band structure: The face-centered-cubic casePhysical Review Letters, 1989
- Strong localization of photons in certain disordered dielectric superlatticesPhysical Review Letters, 1987
- Inhibited Spontaneous Emission in Solid-State Physics and ElectronicsPhysical Review Letters, 1987