Title :
Unusual Surface-Plasmon-Polaritons-Induced Multiflatbands From Usual Two-Dimensional Honeycomb Lattice Photonic Crystals Composed of Plasma-Coated Cylinders
Author :
Kong, X.K. ; Liu, S.B. ; Zhang, Hai-feng ; Guo, Ya-nan ; Wang, Shen-yun
Author_Institution :
Coll. of Electron. & Inf. Eng., Nanjing Univ. of Aeronaut. & Astronaut., Nanjing, China
fDate :
6/1/2012 12:00:00 AM
Abstract :
In the presence of dispersion and dissipation, we deduce a modified plane wave expansion method to calculate photonic bands in 2-D honeycomb lattice photonic crystals (PCs) composed of plasma-coated layers. A linearization technique of the generalized eigenvalue problem for a complex matrix of wave expansion is used to obtain the photonic band structures. In the transverse magnetic mode, when plasma-coating thickness increases to a critical value, most of the dielectric-plasma (DP) photonic bands are the same as photonic bands generated by pure plasma cylinders. This property provides us a way to replace plasma PCs with DP PCs that save energy and materials. In the transverse electric mode, multiflatbands below the plasma frequency also occupy a large frequency range when the plasma coating is sufficiently large. Given that these multiflatbands are caused by surface plasmon polaritons, the region of flatbands depends not on the geometry of the photonic lattice but on the filling factor of the plasma coating. The numerical results validate the correctness of our prediction.
Keywords :
eigenvalues and eigenfunctions; linearisation techniques; optical dispersion; optical films; optical lattices; photonic band gap; photonic crystals; plasma materials processing; polaritons; surface plasmons; 2D honeycomb lattice photonic crystals; DP PC; complex matrix; dielectric-plasma photonic bands; dispersion; dissipation; filling factor; generalized eigenvalue problem; linearization technique; modified plane wave expansion method; photonic band structures; plasma PC; plasma frequency; plasma-coated cylinders; plasma-coated layers; plasma-coating thickness; transverse electric mode; transverse magnetic mode; unusual surface-plasmon-polariton-induced multiflatbands; usual two-dimensional honeycomb lattice photonic crystals; Coatings; Dielectrics; Dispersion; Lattices; Photonic crystals; Photonics; Plasmas; Photonic crystal (PC); dispersive relation; honeycomb lattice; photonic band gap (PBG); plane wave expansion; plasma;
Journal_Title :
Photonics Journal, IEEE
DOI :
10.1109/JPHOT.2012.2198806