Nonreciprocal waveguide Bragg gratings

被引:198
|
作者
Kulishov, M [1 ]
Laniel, JM
Bélanger, N
Azaña, J
Plant, DV
机构
[1] McGill Univ, Dept Elect & Comp Engn, Photon Syst Grp, Montreal, PQ H3A 2A7, Canada
[2] Adtek Photomask Inc, Montreal, PQ H4T 1J6, Canada
[3] INRS Energie, EMT, Montreal, PQ H5A 1K6, Canada
来源
OPTICS EXPRESS | 2005年 / 13卷 / 08期
关键词
D O I
10.1364/OPEX.13.003068
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The use of a complex short-period (Bragg) grating which combines matched periodic modulations of refractive index and loss/gain allows asymmetrical mode coupling within a contra-directional waveguide coupler. Such a complex Bragg grating exhibits a different behavior ( e. g. in terms of the reflection and transmission spectra) when probed from opposite ends. More specifically, the grating has a single reflection peak when used from one end, but it is transparent ( zero reflection) when used from the opposite end. In this paper, we conduct a systematic analytical and numerical analysis of this new class of Bragg gratings. The spectral performance of these, so-called nonreciprocal gratings, is first investigated in detail and the influence of device parameters on the transmission spectra of these devices is also analyzed. Our studies reveal that in addition to the nonreciprocal behavior, a nonreciprocal Bragg grating exhibits a strong amplification at the resonance wavelength ( even with zero net-gain level in the waveguide) while simultaneously providing higher wavelength selectivity than the equivalent index Bragg grating. However, it is also shown that in order to achieve non-reciprocity in the device, a very careful adjustment of the parameters corresponding to the index and gain/loss gratings is required. (C) 2005 Optical Society of America.
引用
收藏
页码:3068 / 3078
页数:11
相关论文
共 50 条
  • [1] Spatially nonreciprocal Bragg gratings based on surface plasmons
    Keshmarzi, Elham Karami
    Tait, R. Niall
    Berini, Pierre
    APPLIED PHYSICS LETTERS, 2014, 105 (19)
  • [2] Polymeric waveguide biosensors with Bragg gratings
    Oh, Min-Cheol
    Kim, Kyung-Jo
    Lee, Jae-Hyun
    Koh, Kwang-Nak
    LINEAR AND NONLINEAR OPTICS OF ORGANIC MATERIALS VI, 2006, 6331
  • [3] Polarization independent Bragg gratings using tilted subwavelength grating waveguide Bragg gratings
    Sun, Hao
    Chen, Lawrence R.
    OPTICS EXPRESS, 2023, 31 (02) : 1214 - 1223
  • [4] A theoretical investigation of slot waveguide Bragg gratings
    Mu, Jianwei
    Zhang, Hua
    Huang, Wei-Ping
    IEEE JOURNAL OF QUANTUM ELECTRONICS, 2008, 44 (7-8) : 622 - 627
  • [5] Spiral Planar-Waveguide Bragg Gratings
    Lin, C.
    Jacobs, E. W.
    Rodgers, J. S.
    INTEGRATED OPTICS: DEVICES, MATERIALS, AND TECHNOLOGIES XIII, 2009, 7218
  • [6] Multimode waveguide Bragg gratings on SOI platform
    Qiu, Huiye
    Liang, Xiong
    Yu, Ping
    2019 18TH INTERNATIONAL CONFERENCE ON OPTICAL COMMUNICATIONS AND NETWORKS (ICOCN), 2019,
  • [7] Waveguide Bragg gratings in Ormocer hybrid polymers
    Girschikofsky, Maiko
    Foerthner, Michael
    Rommel, Mathias
    Frey, Lothar
    Hellmann, Ralf
    OPTICS EXPRESS, 2016, 24 (13): : 14725 - 14736
  • [8] General design flow for waveguide Bragg gratings
    Brueckerhoff-Plueckelmann, Frank
    Buskasper, Tim
    Roemer, Julius
    Kraemer, Linus
    Malik, Bilal
    Mcrae, Liam
    Kuerpick, Linus
    Palitza, Simon
    Schuck, Carsten
    Pernice, Wolfram
    NANOPHOTONICS, 2025, 14 (03) : 297 - 304
  • [9] Polymeric Waveguide Bio Sensors with Bragg Gratings
    Lee, Jae-Hyun
    Kim, Gyeongjo
    Ohs, Min-Choel
    KOREAN JOURNAL OF OPTICS AND PHOTONICS, 2006, 17 (01) : 54 - 59
  • [10] Silicon photonic slot waveguide Bragg gratings and resonators
    Wang, Xu
    Grist, Samantha
    Flueckiger, Jonas
    Jaeger, Nicolas A. F.
    Chrostowski, Lukas
    OPTICS EXPRESS, 2013, 21 (16): : 19029 - 19039