Engineering band gaps in highly symmetric photonic crystals

被引:0
|
作者
Lee, TDM [1 ]
Zoorob, ME
Cox, SJ
Charlton, MDB
Parker, GJ
机构
[1] Univ Southampton, Southampton SO17 1BJ, Hants, England
[2] Mesophoton Ltd, Southampton SO16 7NP, Hants, England
来源
Photonic Crystal Materials and Devices III | 2005年 / 5733卷
关键词
photonic crystal; finite difference time domain; finite element method; fourier transform; high order symmetry;
D O I
10.1117/12.588664
中图分类号
O7 [晶体学];
学科分类号
0702 ; 070205 ; 0703 ; 080501 ;
摘要
A novel method for producing photonic crystals with high orders of rotational symmetry using an inverse Fourier transform (IFT) method is presented. The IFT of an n-sided polygon is taken and the position of the peaks are computed in order to obtain a set of discrete points in real space where the scattering centres are to be located. We show, by simulating the diffraction pattern, that although these points appear disordered, they possess long range order, which also confirms that the arrangement of points has n-fold rotational symmetry. The structures thus possess an arbitrary number of rotational symmetries, whilst retaining the sharp diffraction patterns characteristic of known crystal lattices which exhibit wide band gaps. We present simulation results using the finite difference time domain method (FDTDM) for large non repeating patterns of scatterers produced by this method. We also present results where around 50 points have been generated in a square unit cell and tiled to produce a lattice. These, were simulated using both the finite element method (FEM) and the FDTDM, which agree well. Our results demonstrate that the method is capable of producing crystal structures with wide band gaps where the scattering centres are either non-repeating with no fundamental unit cell, or consist of a (large) number of points in a unit cell, which may then be tiled to form a lattice.
引用
收藏
页码:386 / 393
页数:8
相关论文
共 50 条
  • [21] Control of high-order photonic band gaps in one-dimensional anodic alumina photonic crystals
    Napolskii, Kirill S.
    Noyan, Alexey A.
    Kushnir, Sergey E.
    OPTICAL MATERIALS, 2020, 109
  • [22] Experimental and numerical study of highly sensitive displacement sensors based on photonic crystals at microwave band
    Sha, Shaoshu
    Zhai, Huiqing
    Rowda, Vinay R.
    Chen, Nan-Wei
    Zhou, Weidong
    Lu, Mingyu
    MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 2012, 54 (02) : 432 - 434
  • [23] Photonic band gaps in two-dimensional photonic crystals of core-shell-type dielectric nanorod heterostructures
    Liu, Dan
    Gao, Yihua
    Gao, Dingshan
    Han, Xiangyun
    OPTICS COMMUNICATIONS, 2012, 285 (07) : 1988 - 1992
  • [24] Photonic band gaps of two-dimensional phononic crystals tuned and optimized by modifying the configuration
    Xu Zhen-Long
    Wu Fu-Gen
    ACTA PHYSICA SINICA, 2009, 58 (09) : 6285 - 6290
  • [25] Electric Field-Driven Shifting and Expansion of Photonic Band Gaps in 3D Liquid Photonic Crystals
    Chen, Chun-Wei
    Li, Cheng-Chang
    Jau, Hung-Chang
    Yu, Lu-Chun
    Hong, Ching-Lang
    Guo, Duan-Yi
    Wang, Chun-Ta
    Lin, Tsung-Hsien
    ACS PHOTONICS, 2015, 2 (11): : 1524 - 1531
  • [26] The influence of photonic crystal parameters on the photonic band-gaps
    Dyogtyev, A. V.
    Sukhoivanov, I. A.
    De La Rue, R. A.
    SECOND INTERNATIONAL CONFERENCE ON ADVANCED OPTOELECTRONICS AND LASERS, 2008, 7009
  • [27] Dispersion engineering of photonic crystals
    Prather, DW
    Shi, S
    Sharkawy, A
    McBride, S
    Zanzucchi, P
    Chen, C
    Pustai, D
    Venkataraman, S
    Murakowski, J
    Schneider, G
    PHYSICS, THEORY, AND APPLICATIONS OF PERIODIC STRUCTURES IN OPTICS II, 2003, 5184 : 30 - 40
  • [28] Synthesis of two-dimensional photonic crystals for large band gaps - art. no. 602017
    Liao, YK
    Kiang, YW
    Yang, CC
    Optoelectronic Materials and Devices for Optical Communications, 2005, 6020 : 2017 - 2017
  • [29] Microstructural design for 2D photonic crystals with large polarization-independent band gaps
    Meng, Fei
    Li, Shuo
    Li, Yang Fan
    Jia, Baohua
    Huang, Xiaodong
    MATERIALS LETTERS, 2017, 207 : 176 - 178
  • [30] Analysis of Tunable Absolute Band Gaps in 2-D Honeycomb Lattice Plasma Photonic Crystals
    Kong, Xiang-Kun
    Liu, Shao-Bin
    Zhang, Hai-Feng
    Zhou, Liang
    Fan, Ying
    Li, Chun-Zao
    Xu, Wei-Zhen
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2013, 41 (01) : 243 - 249