Fabrication of Diamond-Structure Alumina Photonic Crystal with Rectangle Cavity Defect and its Microwave Properties

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A diamond-structure alumina photonic crystal with a rectangle cavity defect has been fabricated combining stereolithography (SL) and gel-casting. In transmission spectra a resonance peak of transmission of 70% is observed in the band gap of 10.48Ghz-12.21Ghz, by comparing with the measured result of the perfect structure and theoretical calculations. Experimental results showed that the peak of photonic band gap was caused by the rectangle cavity defect of the diamond structural photonic crystal. The method provides us with a novel approach to fabricate ceramic microwave photonic crystals with point defect.

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September 2013

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© 2013 Trans Tech Publications Ltd. All Rights Reserved

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

DOI: 10.1103/physrevlett.58.2059

Google Scholar

[2] . John, S. Strong localization of photons in certain disordered dielectric superlattices. Phys. Rev. Lett 1987, 58, 2486–2489.

DOI: 10.1103/physrevlett.58.2486

Google Scholar

[3] S. John, J. Wang, Quantum electrodynamics near a photonic band gap: Photon bound states and dressed atomsPhys. Phys. Rev. Lett 1990, 64, 2418–2421.

DOI: 10.1103/physrevlett.64.2418

Google Scholar

[4] S. John, J. Wang, Quantum optics of localized light in a photonic band gap, Phys. Rev. B 1991, 43, 12772–12789.

DOI: 10.1103/physrevb.43.12772

Google Scholar

[5] Song, B. S., Noda, S. & Asano, T. Photonic devices based on in-plane hetero photonic crystals. Science 2003 300, 1537.

DOI: 10.1126/science.1083066

Google Scholar

[6] Mei Zhou, Xiaoshuang Chen, Yong Zeng, Fabrication of two-dimensional infrared photonic crystals by deep reactive ion etching on Si wafers and their optical properties, Solid State Communications 2004, (132), 503–506.

DOI: 10.1016/j.ssc.2004.09.024

Google Scholar

[7] Yanfang Feng, Fugen Wu, Huilin Zhong, Defect modes created by an elliptic defect in two-dimensional triangular photonic crystals, Solid State Communications 2007, (142), 223–227.

DOI: 10.1016/j.ssc.2007.02.011

Google Scholar

[8] Noda, S., Tomoda, K., Yamamoto, N. & Chutinan, A. Full three-dimensional photonic bandgap crystals at near-infrared wavelengths. Science 2000, 289, 604–606.

DOI: 10.1126/science.289.5479.604

Google Scholar

[9] A. Mekis, J. C. Chen, I. Kurland, S. Fan, P. R., Villeneuve, and J. D. Jannopoulos, High Transmission through Sharp Bends in Photonic Crystal Waveguides, Phys. Rev. Lett 1996, 77, 3787–90.

DOI: 10.1103/physrevlett.77.3787

Google Scholar

[10] Noda, S., Chutinan, A. & Imada, M. Trapping and emission of photons by a single defect in a photonic bandgap structure. Nature 2000, 407, 608–610.

DOI: 10.1038/35036532

Google Scholar

[11] J. W. Haus, A Brief Review of Theoretical Results for Photonic Band Structures,J. Mod. Optics 1994, 41.

Google Scholar

[2] 195–207.

Google Scholar

[12] K.M. Ho,C.T. Chan,and C.M. Soukoulis, Existence of a Photonic Gap in Periodic Dielectric Structeres, Phys. Rev. Lett 1990, 65.

DOI: 10.1103/physrevlett.65.3152

Google Scholar

[25] 3152–5.

Google Scholar

[13] E. O zbay,B. Temelkuran , Defect structures in metallic photonic crystalsAppl. Phys. Lett. 1996, Vol. 69, No. 25, 16 December.

Google Scholar

[14] Shingo Kanehira, Soshu Kirihara, Yoshinari Miyamoto., Fabrication of Photonic Crystal with a Diamond Structure Having an Air Cavity Defect and its Microwave Properties, J. Am. Ceram. Soc 2005, 88.

DOI: 10.1111/j.1551-2916.2005.00478.x

Google Scholar

[9] 2480–2484.

Google Scholar

[15] Liu, H. J, Li, Y.M., Hao, Y, Dong, X.P. and Huang, N.Y. Study of rapid casting process based on SLS prototypes, Advances in Abrasive Technology VIII, Trans Tech Publications, Zurich-Uetikon, 2005, pp.593-6.

Google Scholar

[16] R. GilissenU, J.P. Erauw1, A. Smolders, E., Vanswijgenhoven, J. Luyten, Gelcasting a near net shape technique,Materials and Design 2000, 21, 251-257.

DOI: 10.1016/s0261-3069(99)00075-8

Google Scholar

[17] Haihua Wu, Dichen Li and Nannan Guo. Fabrication of integral ceramic mold for investment casting of hollow turbine blade based on stereolithography, Rapid Prototyping Journal 2009, 15/4. 232–237.

DOI: 10.1108/13552540910979749

Google Scholar