Study on ceramic photonic bandgap structure with three-dimensional diamond lattice

被引:0
|
作者
Y. Miyamoto
机构
[1] Japan
[2] Joining and Welding Research Institute Osaka University
[3] Osaka 567-0047
关键词
photonic crystals (PCs); powder injection molding; ceramic powder; diamond lattice;
D O I
暂无
中图分类号
TQ174 [陶瓷工业];
学科分类号
摘要
A novel process,which was based on powder injection molding,was investigated for the fabrication of ceramic photonic bandgap structure with three-dimensional diamond lattice. The SiO2-TiO2 ceramic powder was mixed with a water-soluble agent to produce slurry. The slurry was then injected into an epoxy mold with inverse diamond lattice,fabricated by the stereolitographic rapid prototyping process. To increase the density of the green compact,cold isostatic pressing was applied on the unit. Using thermal de-binding,the water-soluble agent and the epoxy were extracted at 360 and 650 K,respectively. Sintering was immediately done at 950 K for 5 h and the desired three-dimensional ceramic structure was obtained. The calculated band diagram for this structure indicated the existence of an absolute photonic bandgap for all wave vectors. At 14.7-18.5 GHz,a complete band gap was located with a maximum attenuation of 30 dB at 17 GHz,when transmission was measured in the <100> direction between 10 and 20 GHz.
引用
收藏
页码:461 / 464
页数:4
相关论文
共 50 条
  • [21] Full-wave characterization of three-dimensional photonic bandgap structures
    Frezza, Fabrizio
    Pajewski, Lara
    Schettini, Giuseppe
    IEEE TRANSACTIONS ON NANOTECHNOLOGY, 2006, 5 (05) : 545 - 553
  • [22] The effect of nonlinear exposure on bandgap of three-dimensional holographic photonic crystal
    Ren Xiao-Bin
    Zhai Tian-Rui
    Ren Zhi
    Lin Jing
    Jing, Zhou
    Liu Da-He
    ACTA PHYSICA SINICA, 2009, 58 (05) : 3208 - 3213
  • [23] Three-dimensional dielectric photonic crystals of body-centered-tetragonal lattice structure
    Tao, R
    Xiao, D
    APPLIED PHYSICS LETTERS, 2002, 80 (25) : 4702 - 4704
  • [24] Interleaving two-dimensional lattices to create three-dimensional photonic bandgap structures
    Reynolds, AL
    Arnold, JM
    IEE PROCEEDINGS-OPTOELECTRONICS, 1998, 145 (06): : 436 - 440
  • [25] Interleaving two-dimensional lattices to create three-dimensional photonic bandgap structures
    Optoelectronics Research Group, Department of Electronics and Electrical Engineering, University of Glasgow, Glascow G12 8LT, United Kingdom
    IEE Proc Optoelectron, 6 (436-440):
  • [26] Bandgap engineering of three-dimensional phononic crystals in a simple cubic lattice
    Lucklum, Frieder
    Vellekoop, Michael J.
    APPLIED PHYSICS LETTERS, 2018, 113 (20)
  • [27] Three-dimensional characterisation of a two-dimensional photonic bandgap reflector at midinfrared wavelengths
    Rowson, S
    Chelnokov, A
    Cuisin, C
    Lourtioz, JM
    IEE PROCEEDINGS-OPTOELECTRONICS, 1998, 145 (06): : 403 - 408
  • [28] Fabrication of three-dimensional ceramic photonic crystals and their electromagnetic properties
    Mori, H
    Kirihara, S
    Miyamoto, Y
    JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2006, 26 (10-11) : 2195 - 2198
  • [29] Tuning of Bandgap Structures in Three-Dimensional Kagome-Sphere Lattice
    Liu, Ying
    Sun, Xiu-zhan
    Jiang, Wen-zheng
    Gu, Yu
    JOURNAL OF VIBRATION AND ACOUSTICS-TRANSACTIONS OF THE ASME, 2014, 136 (02):
  • [30] Explicit formulas for obtaining the radiation characteristics of an antenna based on a three-dimensional metallic photonic bandgap structure
    He, SL
    Popov, M
    Qiu, M
    Liao, ZG
    Simovski, C
    MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 2001, 29 (06) : 376 - 381