Propagation loss of line-defect photonic crystal slab waveguides

被引:20
|
作者
Kuang, Wan [1 ]
Kim, Woo Jun
Mock, Adam
O'Brien, John
机构
[1] Boise State Univ, Dept Elect & Comp Engn, Boise, ID 83725 USA
[2] Univ So Calif, Dept Elect Engn Electrophys, Los Angeles, CA 90089 USA
基金
美国国家科学基金会;
关键词
finite-difference time domain (FDTD); photonic crystals; propagation loss; waveguides;
D O I
10.1109/JSTQE.2006.884785
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Photonic crystal slab waveguides are created by inserting a linear defect in two-dimensional (2-D) periodic dielectric structures of finite height. Photonic crystals provide 2-D in-plane bandgaps through which light cannot propagate, however, the fact that the waveguide modes must be index-confined in the vertical direction implies that the propagation loss is strongly dependent on the out-of-plane radiation loss. We present a fully three-dimensional finite-difference time-domain numerical model for calculating the out-of-plane radiation loss in photonic crystal slab waveguides. The propagation loss of the single-line defect waveguide in 2-D triangular lattice photonic crystals is calculated for suspended membranes, oxidized lower claddings, and deeply etched structures. The results show that low-loss waveguides are achievable for sufficiently suspended membranes and oxidized lower cladding structures. The roles of the photonic crystal in out-of-plane loss of the waveguide modes are further analyzed. It is predicted that the out-of-plane radiation loss can be reduced by shifting one side of the photonic crystal cladding by one-half period with respect to the other sides along the propagation direction.
引用
收藏
页码:1183 / 1195
页数:13
相关论文
共 50 条
  • [1] Light propagation in a photonic-crystal-slab line-defect waveguide
    Tokushima, M
    Yamada, H
    IEEE JOURNAL OF QUANTUM ELECTRONICS, 2002, 38 (07) : 753 - 759
  • [2] Self-phase modulation in photonic-crystal-slab line-defect waveguides
    Oda, Hisaya
    Inoue, Kuon
    Tanaka, Yu
    Ikeda, Naoki
    Sugimoto, Yoshimasa
    Ishikawa, Hiroshi
    Asakawa, Kiyoshi
    APPLIED PHYSICS LETTERS, 2007, 90 (23)
  • [3] Dispersion compensation with photonic crystal line-defect waveguides
    Petrov, AY
    Eich, M
    IEEE JOURNAL ON SELECTED AREAS IN COMMUNICATIONS, 2005, 23 (07) : 1396 - 1401
  • [4] Accurate modeling of line-defect photonic crystal waveguides
    Sauvan, C
    Lalanne, P
    Rodier, JC
    Hugonin, JP
    Talneau, A
    IEEE PHOTONICS TECHNOLOGY LETTERS, 2003, 15 (09) : 1243 - 1245
  • [5] Disorder-induced scattering loss of line-defect waveguides in photonic crystal slabs
    Kuramochi, E
    Notomi, M
    Hughes, S
    Shinya, A
    Watanabe, T
    Ramunno, L
    PHYSICAL REVIEW B, 2005, 72 (16)
  • [6] SOI-based photonic crystal line-defect waveguides
    Yamada, K
    Notomi, M
    Shinya, A
    Yokohama, I
    Shoji, T
    Tsuchizawa, T
    Watanabe, T
    Takahashi, J
    Tamechika, E
    Morita, H
    ACTIVE AND PASSIVE OPTICAL COMPONENTS FOR WDM COMMUNICATIONS II, 2002, 4870 : 324 - 338
  • [7] Exploring slow and dispersive propagation in 2D line-defect photonic crystal waveguides
    Davanço, M
    Blumenthal, DJ
    2003 IEEE LEOS ANNUAL MEETING CONFERENCE PROCEEDINGS, VOLS 1 AND 2, 2003, : 216 - 217
  • [8] Slow light engineering in resonant photonic crystal line-defect waveguides
    Moghaddam, Maliheh Khatibi
    Fleury, Romain
    OPTICS EXPRESS, 2019, 27 (18) : 26229 - 26238
  • [9] Polarization Rotation and Mode Splitting in Photonic Crystal Line-Defect Waveguides
    Sotto, Moise
    Tomita, Isao
    Debnath, Kapil
    Saito, Shinichi
    FRONTIERS IN PHYSICS, 2018, 6
  • [10] Thermooptic switch based on photonic-crystal line-defect waveguides
    Chu, T
    Yamada, H
    Ishida, S
    Arakawa, Y
    IEEE PHOTONICS TECHNOLOGY LETTERS, 2005, 17 (10) : 2083 - 2085