Title :
Artificial Anisotropy in Circular Photonic Crystals and Applications
Author :
Massaro, Alessandro ; Cingolani, Roberto ; De Vittorio, Massimo ; Passaseo, Adriana
Author_Institution :
Center of Bio-Mol. Nanotechnol., IIT (Italian Inst. of Technol.), Lecce, Italy
fDate :
3/1/2010 12:00:00 AM
Abstract :
In this paper, we analyze the birefringence effect in circular photonic crystals (CphCs). The studied CphCs are dielectric rings (DRs) and photonic crystals with cylindrical air holes arranged in circular patterns. The dielectric concentric circular patterns admit two preferred propagation directions defined by an extraordinary and an ordinary refractive index, representing two electric field polarizations. These electric fields are diffracted inside the crystal or are localized in a central microcavity region. We prove the induced artificial anisotropy in DRs through the geometrical equivalence with the corresponding thin-film multilayer structure. The equivalence is obtained through the geometrical synthesis of the wavefront propagation inside the artificial anisotropic structure. As applications, we analyze a Si/SiO2 DR Bragg reflector and a GaAs CphC microcavity resonator. The Bragg theory is validated by numerical time-domain approaches that are well suited to solve scattering problems. The microcavity resonance analysis and the Q -factor evaluation are performed by the finite-element method modeling.
Keywords :
III-V semiconductors; Q-factor; anisotropic media; birefringence; distributed Bragg reflectors; elemental semiconductors; finite element analysis; gallium arsenide; integrated optics; light scattering; micro-optics; microcavities; optical multilayers; photonic crystals; refractive index; silicon; silicon compounds; Bragg theory; DR Bragg reflector; GaAs; Q-factor; Si-SiO2; birefringence; circular photonic crystals; cylindrical air holes; dielectric concentric circular patterns; dielectric rings; electric field polarizations; finite-element method modeling; induced artificial anisotropy; microcavity resonator; numerical time-domain approaches; refractive index; scattering; thin-film multilayer structure; wavefront propagation inside; Bragg scattering; circular photonic crystal (CphC); form birefringence; microcavity resonator; optical rings;
Journal_Title :
Nanotechnology, IEEE Transactions on
DOI :
10.1109/TNANO.2009.2028690