Dispersive photonic crystals from the plane wave method

被引:7
|
作者
Guevara-Cabrera, E. [1 ]
Palomino-Ovando, M. A. [1 ]
Flores-Desirena, B. [1 ]
Gaspar-Armenta, J. A. [2 ]
机构
[1] Benemerita Univ Autonoma Puebla, Fac Ciencias Fis Matemat, Apdo Post 165, Puebla 72000, Pue, Mexico
[2] Univ Sonora Apdo, Dept Invest Fis, Post 5-088, Hermosillo 83190, Sonora, Mexico
关键词
Polaritonic photonic crystals; Dispersive photonic crystals; Polaritonic materials; 2-DIMENSIONAL PERIODIC-SYSTEMS; BAND-STRUCTURES; FREQUENCY;
D O I
10.1016/j.physb.2015.12.030
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
Nowadays photonic crystals are widely used in many different applications. One of the most used methods to compute their band structure is the plane wave method (PWM). However, it can only be applied directly to non-dispersive media and be extended to systems with a few model dielectric functions. We explore an extension of the PWM to photonic crystals containing dispersive materials, that solves an eigenvalue equation for the Bloch wave vectors. First we compare our calculation with analytical results for one dimensional photonic crystals containing Si using experimental values of its optical parameters, and obtainig very well agreement, even for the spectrum region with strong absorption. Then, using the same method, we computed the band structure for a two dimensional photonic crystal without absorption, formed by an square array of MgO cylinders in air. The optical parameters for MgO were modeled with the Lorentz dielectric function. Finally, we studied an array of MgO cylinders in a metal, using Drude model without absorption, for the metal dielectric function. For this last case, we study the gap-midgap ratio as a function of the filling fraction for both the square and triangular lattice. The gap-midgap ratio is larger for the triangular lattice, with a maximum value of 10% for a filling fraction of 0.6. Our results show that the method can be applied to dispersive materials, and then to a wide range of applications where photonic crystals can be used. (C) 2016 Published by Elsevier B.V.
引用
收藏
页码:53 / 58
页数:6
相关论文
共 50 条
  • [11] Analysis of surface modes in photonic crystals by a plane-wave transfer-matrix method
    Che, Ming
    Li, Zhi-Yuan
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA A-OPTICS IMAGE SCIENCE AND VISION, 2008, 25 (09) : 2177 - 2184
  • [12] Revised plane wave method for dispersive material and its application to band structure calculations of photonic crystal slabs
    Shi, SY
    Chen, CH
    Prather, DW
    APPLIED PHYSICS LETTERS, 2005, 86 (04) : 043104 - 1
  • [13] The application of effective-medium theory in the plane-wave expansion method for analyzing photonic crystals
    Shen, LF
    He, SL
    Wu, L
    ACTA PHYSICA SINICA, 2002, 51 (05) : 1133 - 1138
  • [14] A novel eigenvalue method for calculating the band structure of lossy and dispersive photonic crystals
    Wang Hui
    Sha Wei, E. I.
    Huang Zhi-Xiang
    Wu Xian-Liang
    Shen Jing
    ACTA PHYSICA SINICA, 2014, 63 (18)
  • [15] Using the plane wave expansion method studying band-gap of one dimensional holographic photonic crystals
    Cheng, Yang
    Hongwai yu Jiguang Gongcheng/Infrared and Laser Engineering, 2010, 39 (02): : 256 - 259
  • [16] Investigation on dispersive properties of photonic crystals for employment of Z-scan method
    Hwang, Jisoo
    Wu, J. W.
    PHOTONIC CRYSTAL MATERIALS AND DEVICES VI, 2007, 6480
  • [17] PHOTONIC BANDS - CONVERGENCE PROBLEMS WITH THE PLANE-WAVE METHOD
    SOZUER, HS
    HAUS, JW
    INGUVA, R
    PHYSICAL REVIEW B, 1992, 45 (24): : 13962 - 13972
  • [18] Plane wave method for photonic liquid crystal fibers modeling
    Iwaszczuk, Krzysztof
    Rutkowska, Katarzyna A.
    PHOTONICS APPLICATIONS IN ASTRONOMY, COMMUNICATIONS, INDUSTRY, AND HIGH-ENERGY PHYSICS EXPERIMENTS 2008, 2008, 7124
  • [19] Insight into band structures for out-of-plane propagation of a 2D dispersive photonic crystal: the dispersive photonic crystal iterative method
    Valenzuela-Sau, J. D.
    Garcia-Llamas, Raul
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS, 2022, 39 (03) : 779 - 784
  • [20] Mode tuning in dispersive and non-dispersive photonic crystals by defects
    Moghadam, Fereshteh Rahimi
    Bahari, Ali
    JOURNAL OF MODERN OPTICS, 2017, 64 (06) : 567 - 571