光学学报, 2015, 35 (s1): s113001, 网络出版: 2015-07-27  

基于光子晶体波导环形共振腔的分束管理特性研究

Study on Splitting Management Characteristics of Ring Resonance Cavity Based on Photonic Crystal Waveguide
作者单位
南昌航空大学测试与光电子工程学院,江西省光电检测技术工程实验室, 江西 南昌 330063
摘要
提出一种基于正方晶格二维光子晶体波导环形共振腔结构。通过有限元分析方法数值模拟其传输特性,研究发现,通过改变环形共振腔内可调介质柱的结构参数,可以有效地调节共振腔的共振频率;并根据共振腔不同的共振模式可以设计出多通道输出的分束器,实现了良好的带通滤波和分束特性。以1×2的分束器为例,通过改变共振腔内可调介质柱结构参数,可以实现对各端口的输出光强的有效调制。此特性在全光网络中具有一定的潜在应用价值。
Abstract
A kind of waveguide ring resonator structures based on two-dimensional square lattice photonic crystal is reported. The transmission characteristics are researched by finite element methodnumerical simulation. The results show that by changing the structural parameters of adjustable rods in ring cavity, the resonance frequency of resonance cavity can be effectively adjusted, and according to the diffident resonance modes of the resonance cavity, a good band-pass filter and beam splitting characteristics are achieved. As an example with a 1×2 beaming splitter, by changing the structure parameters of adjustable rods in ring cavity regularly, the intensity modulation to each port output light can be realized. This feature has certain potential application value in the all-optical network.
参考文献

[1] E Yablonovitch. Inhibited spontaneous emission in solid-state physics an electronics[J]. Phys Rev Lett, 1987, 58(20): 2059-2062.

[2] S Jonh. Strong localization of photons in certain disordered dielectric superlattices[J]. Phys Rev Lett, 1987, 58(23): 2486-2489.

[3] S Simsek. A novel method for designing one dimensional photonic crystals with given bandgap characteristics[J]. AEUE-International Journal of Electronics and Communications, 2013, 67(10): 827-832.

[4] Q Xu, C Peng. The properties of two-dimensional photonic crystals bandgap structure with rhombus lattice[J]. Optik-International Journal for Light and Electron Optics, 2013, 125(1): 104-106.

[5] X Chen, X Liang, Y Wang, et al.. Theoretical study of light localization in photonic bandgaps of organic octagonal quasiperiodic photonic crystal slabs[J]. Optik-International Journal for Light and Electron Optics, 2014, 125(18): 5058-5061.

[6] T Yajima, J Yamamoto, F Ishii, et al.. Low-loss photonic crystal fiber fabricated by a slurry casting method[J]. Opt Express, 2013, 21(25): 30500.

[7] M R Lebbal, T Boumaza, M Bouchemat. Structural study of the single-mode photonic crystal fiber[J]. Optik-International Journal for Light and Electron Optics, 2013, 124(20): 4610-4613.

[8] G Zhang, F Xing, P Yan, et al.. Double cladding seven-core photonic crystal fiber[J]. Optics and Photonics Journal, 2013, 3(2): 47-49.

[9] M I Hasan, M S Habib, M S Habib, et al.. Design of hybrid photonic crystal fiber: Polarization and dispersion properties[J]. Photonics and Nanostructures-Fundamentals and Applications, 2014, 12(2): 205-211.

[10] Z Wang, C Zhao, S Jin. Design of a bending-insensitive single-mode photonic crystal fiber[J]. Optical Fiber Technology, 2013, 19(3): 213-218.

[11] X X Shen, Y Z Ren, G Y Dong, et al.. Optimization design of holographic photonic crystal for improved light extraction efficiency of GaN LED[J]. Superlattices and Microstructures, 2013, 64: 303-310.

[12] Y Chen, B Sun, T Ma, et al.. Thermal management for high-power photonic crystal light emitting diodes[J]. Microelectronics Reliability, 2014, 54(1): 124-130.

[13] N Janrao, V Janyani. Ultra compact slow light photonic crystal directional coupler design with elliptical rods[J]. Optik-International Journal for Light and Electron Optics, 2013, 124(17): 3120-3124.

[14] L Li, G Q Liu. Photonic crystal ring resonator channel drop filter[J]. Optik-International Journal for Light and Electron Optics, 2013, 124(17): 2966-2968.

[15] A Mehr, F Emami, F Mohajeri. Tunable photonic crystal filter with dispersive and non-dispersive chiral rods[J]. Opt Commun, 2013, 301(1): 88-95.

[16] J S Li, H Liu. Terahertz polarization beam splitter based on two photonic crystal cavities[J]. Optik-International Journal for Light and Electron Optics, 2014, 136(1): 139-143.

[17] N Janrao, V Janyani. Ultra compact slow light photonic crystal directional coupler design with elliptical rods[J]. Optik-International Journal for Light and Electron Optics, 2013, 124(17): 3120-3124.

[18] K Ren, X B Ren. Y-shaped beam splitter by graded structure design in a photonic crystal[J]. Chinese Science Bulletin, 2012, 57(11): 1241-1245.

[19] M G Baboly, Y Soliman, M F Su, et al.. Enhanced plane wave expansion analysis for the band structure of bulk modes in two-dimensional high-contrast solid-solid phononic crystals[J]. Photonics and Nanostructures-Fundamentals and Applications, 2014, 12(5): 487-492.

[20] I A Khromova, L A Melnikov. Anisotropic photonic crystals: Generalized plane wave method and dispersion symmetry properties[J]. Opt Commun, 2008, 281(21): 5458-5466.

[21] Y Wu, X Chen, W Lu. Thermal radiation property of a three dimensional photonic crystal based on multiple scattering method[J]. International Journal of Infrared and Millimeter Waves, 2006, 27(3): 425-434.

[22] K B Dada, E Momoniat. On the application of finite differences, method of lines and pseudo-spectral methods to smectic-C liquid crystals[J]. International Journal of Numerical Methods for Heat & Fluid Flow, 2010, 20(4): 429-444.

[23] J Manzanares-Martinez, P Castro-Garay. Modeling the tuning of lasing in liquid crystal based one-dimensional photonic crystals using the finite difference timedomain method[J]. Journal of Electromagnetic Waves and Applications, 2010, 24(14-15): 1867-1875.

[24] S Giani, I G Graham. Adaptive finite element methods for computing band gaps in photonic crystals[J]. Numerische Mathematik, 2012, 121(1): 31-64.

[25] E Degirmenci, P Landais. Finite element method analysis of band gap and transmission of two-dimensional metallic photonic crystals at terahertz frequencies[J]. Appl Opt, 2013, 52(30): 7367-7375.

[26] I Andonegui, A J Garcia-Adeva. The finite element method applied to the study of two-dimensional photonic crystals and resonant cavities[J]. Opt Express, 2013, 21(4): 4072-4092.

刘云凤, 刘彬, 何兴道, 李翔, 钱佳成, 龚强. 基于光子晶体波导环形共振腔的分束管理特性研究[J]. 光学学报, 2015, 35(s1): s113001. Liu Yunfeng, Liu Bin, He Xingdao, Li Xiang, Qian Jiachen, Gong Qiang. Study on Splitting Management Characteristics of Ring Resonance Cavity Based on Photonic Crystal Waveguide[J]. Acta Optica Sinica, 2015, 35(s1): s113001.

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