Optical Fabry-Perot filter based on photonic band gap quasi-periodic one-dimensional multilayer according to the definite Rudin-Shapiro distribution

被引:17
作者
Bouazzi, Y. [1 ]
Kanzari, M. [1 ]
机构
[1] Univ Tunis El Manar UTM, Lab Photovolta & Mat Semicond LPMS, Ecole Natl Ingn Tunis, Tunis, Tunisia
关键词
Photonic crystals; Fably-Perot filter; Quasi-periodic; Rudin-Shapiro; Quality factor; Finesse coefficient;
D O I
10.1016/j.optcom.2012.01.082
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
In this work, a new type of optical filter using photonic band gap materials has been suggested. Indeed, a combination of periodic H(LH)(J) and Rudin-Shapiro quasi-periodic one-dimensional photonic multilayer systems (RSM) were used. SiO2 (L) and TiO2 (H) were chosen as two elementary layers with refractive indexes n(L)=1.45 and n(H) =2.30 respectively. The study configuration is H(LH)(J)[RSM]H-P(LH)(J), which forms an effective Fabry-Perot filter (FPF), where J and P are respectively the repetition number of periodic and (RSM) stacks. We have numerically investigated by means of transfer-matrix approach the transmission properties in the visible spectral range of FPF system. We show that the number and position of resonator peaks are dependent on the (RSM) repetition number P and incidence angle of exciting light. The effect of these two parameters for producing an improved polychromatic filter with high finesse coefficient (F) and quality factor (Q) is studied in details. (C) 2012 Elsevier B.V. All rights reserved.
引用
收藏
页码:2774 / 2779
页数:6
相关论文
共 13 条
[1]  
ABELES F, 1948, ANN PHYS-PARIS, V3, P504
[2]  
Bouazzi Y, 2009, OPT APPL, V39, P489
[3]   Tunable Fabry-Perot filter based on one-dimensional photonic crystals with liquid crystal components [J].
Cos, J. ;
Ferre-Borrull, J. ;
Pallares, J. ;
Marsal, L. F. .
OPTICS COMMUNICATIONS, 2009, 282 (06) :1220-1225
[4]   TUNABLE LIQUID-CRYSTAL FABRY-PEROT-INTERFEROMETER FILTER FOR WAVELENGTH-DIVISION MULTIPLEXING COMMUNICATION-SYSTEMS [J].
HIRABAYASHI, K ;
TSUDA, H ;
KUROKAWA, T .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 1993, 11 (12) :2033-2043
[5]  
Hofmann H., 2008, PHOTONICS NANOSTRUCT
[6]   Engineering the filter response of photonic crystal microcavity filters [J].
Jugessur, AS ;
Pottier, P ;
De La Rue, RM .
OPTICS EXPRESS, 2004, 12 (07) :1304-1312
[7]  
Kim Jae Hwan, 2006, LAS EL SOC LEOS 2006
[8]  
Markov V. B., 2004, QUANTUM ELECT OPTOEL, V7, P465
[9]   Physics and applications of photonic nanocrystals [J].
Ozbay, Ekmel ;
Guven, Kaan ;
Aydin, Koray ;
Bayindir, Mehmet .
INTERNATIONAL JOURNAL OF NANOTECHNOLOGY, 2004, 1 (04) :379-398
[10]   Performance of waveguide-based two-dimensional photonic-crystal mirrors studied with Fabry-Perot resonators [J].
Rattier, M ;
Benisty, H ;
Smith, CJM ;
Béraud, A ;
Cassagne, D ;
Jouanin, C ;
Krauss, TF ;
Weisbuch, C .
IEEE JOURNAL OF QUANTUM ELECTRONICS, 2001, 37 (02) :237-243