The BPG Property of Photonic Crystal for TE Mode with Sector Pillars as Scatterers

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Abstract:

Scatterer is the basic element of photonic crystal. With operating frequency f =1THz (wavelength λ =300μm), we proposed sector as scatterer and analyzed the influence of parameters to photonic bandgap (BPG) for the structures of pillars in air, such as the center radius of sector r, width of sector d, and central angle of the sector θ. For two-dimensional hexagonal arrays, the absolute BPG width and the relative BPG width were demonstrated by the three parameters in TE mode, respectively.

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Advanced Materials Research (Volumes 998-999)

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107-110

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July 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] D. Nurligareev, V. A. Sychugov. Technique for determining the cell parameters of the confined one-dimensional photonic crystal, based on the Floquet-Bloch formalism. Bulletin of the Lebedev Physics Institude, 2012, 39(2): 33-37.

DOI: 10.3103/s1068335612020017

Google Scholar

[2] Chen Shibin, Li Dichen, Tian Xiaoyong, et al. Effective fabrication method of 3D ceamic photonic crystals with diamond structure, Rapid Prototyping Journal, 2012, 18(1): 49-55.

DOI: 10.1108/13552541211193494

Google Scholar

[3] Tang Bingshu, Tang Xiaozhou, Wang Gang. Transmission spectra of two dimensional cylindrical layered complex periodic photonic crystal, Infrared and Laser Engineering, 2011, 40(11): 2138-2142.

Google Scholar

[4] Feng Shuai, Yang Guojian, Li Yuxi, et al. Tunable slow-light multi-mode photonic crystal Waveguides based on the coupling of square cavities, Science China Physics, 2012, 55(10): 1769-1775.

DOI: 10.1007/s11433-012-4837-z

Google Scholar

[5] liang Qingxuan, Li Dichen, Yang Gai. Fabrication of diamond-structured multiceramic coupling photonic crystal and its ultra-wide bandgap properties, Microw. Opt. Technol. Lett. 2012, 54(11): 2569-2572.

DOI: 10.1002/mop.27134

Google Scholar

[6] Yin Jianling, Huang Xuguang, Liu Songhao, et al. Effect of the structure shape on the 8-fold photonic quasicrystals, Chinese J. Lasers, 2010, 37(2): 567-571.

DOI: 10.3788/cjl20103702.0567

Google Scholar

[7] J. S. Brownless, S. Mahmoodian, K. B. Dossou, et al. Coupled waveguide modes in hexagonal photonic crystals, Optics Express, 2010, 18(24): 25346-25360.

DOI: 10.1364/oe.18.025346

Google Scholar

[8] Ma Yong , Lu Zheng, Chen Qin , et al. Recent Advances of Terahertz Imaging Technologies, Recent Patents on Signal Processing, 2012, 2(1): 4-11.

Google Scholar

[9] C. Duque, M. Mora-Ramos. The two-dimensional square and triangular photonic lattice under the effects of magnetic field, hydrostatic pressure, and temperature, Optical and Quantum Electronics, 2012, 44(8): 375-392.

DOI: 10.1007/s11082-012-9545-4

Google Scholar

[10] Khem B. Thapa, Sanjay Srivastava, Sarika Tiwari. Enlarged Photonic Band Gap in Heterostructure of Metallic Photonic and Superconducting Photonic Crystals, Journal of Superconductivity and Novel Magnetism, 2010, 23(4): 517-525.

DOI: 10.1007/s10948-010-0644-9

Google Scholar