Study of waveguide crosstalk in silicon photonics integrated circuits

被引:10
|
作者
Donzella, Valentina [1 ]
Fard, Sahba Talebi [1 ]
Chrostowski, Lukas [1 ]
机构
[1] Univ British Columbia, Dept Elect & Comp Engn, Vancouver, BC V5Z 1M9, Canada
来源
PHOTONICS NORTH 2013 | 2013年 / 8915卷
关键词
Silicon Photonics; high-density photonics integration; Silicon on Insulator SOI; integrated optics; waveguide cross-talk; directional couplers; optical bio-sensors;
D O I
10.1117/12.2042366
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Silicon photonics is going trough a terrific expansion driven by several applications, from chip wiring to integrated sensors and telecommunications. Some applications, e. g. intra and inter chip connections and sensing, require long parallel waveguides for wiring or for connecting grating couplers (GCs) to devices situated in sensing micro-channels. In well packed photonics chips there are often long wiring waveguides parallel for several mm, so loss can be caused by light coupled back and forth between them (cross-talk), by scattering, wall roughness, mode mismatch, etc. This work aims to investigate cross-talk for long parallel waveguides, and to propose methods to reduce cross-talk loss when high integration density is required. We have designed and fabricated about 200 testing structures exploiting e-beam on silicon on insulator (SOI) chip, in order to test several parameters and to find out dominant loss mechanisms. All devices have been tested and measured using an automatic optical bench, in the wavelength range between 1500-1600 nm. Achieved results are promising, since they allow for comparing cross-talk for short as well as long interaction lengths (up to 5 mm), different waveguide width pairs, several separation distances, and for TE and TM polarization. For smaller gaps, having not symmetric pair of waveguides is very beneficial, since it results in a lower power coupling, e. g. about 20/14 dB of crosstalk reduction for TE/TM waveguides after 5 mm of propagation and gap of 0.5 mu m. This can be very useful for the design of integrated photonics chips requiring high-density packaging of devices and waveguides.
引用
收藏
页数:8
相关论文
共 50 条
  • [1] Photonics on silicon integrated circuits
    Lin, WH
    Wu, C
    APOC 2001: ASIA-PACIFIC OPTICAL AND WIRELESS COMMUNICATIONS: OPTICAL FIBER AND PLANAR WAVEGUIDE TECHNOLOGY, 2001, 4579 : 64 - 70
  • [2] Low-crosstalk silicon photonics arrayed waveguide grating
    Zhang, Zhiqun
    Hu, Juan
    Chen, Hua
    Li, Fangjiang
    Zhao, Lei
    Gui, Jinbin
    Fang, Qing
    CHINESE OPTICS LETTERS, 2017, 15 (04)
  • [3] Low-crosstalk silicon photonics arrayed waveguide grating
    张志群
    胡娟
    陈华
    李方江
    赵磊
    桂进斌
    方青
    Chinese Optics Letters, 2017, 15 (04) : 43 - 46
  • [4] Low-loss, low-crosstalk waveguide crossing for scalable integrated silicon photonics applications
    Johnson, Mack
    Thompson, Mark G.
    Sahin, Dondu
    OPTICS EXPRESS, 2020, 28 (09): : 12498 - 12507
  • [5] Silicon Electronics-Photonics Integrated Circuits for Datacenters
    Shekhar, Sudip
    Chrostowski, Lukas
    Mirabbasi, Shahriar
    Nayak, Spoorthi
    AlTaha, Mohammed W.
    Naguib, Ahmed
    Ramani, Ajith S.
    Jayatilleka, Hasitha
    2016 IEEE COMPOUND SEMICONDUCTOR INTEGRATED CIRCUIT SYMPOSIUM (CSICS), 2016, : 241 - 244
  • [6] Low-crosstalk silicon-photonics arrayed waveguide gratings integrated with micro-ring filter
    Liu, Shiping
    Hu, Heming
    Ma, Xiaoyue
    Dong, Runyu
    Fang, Qing
    Chen, Hua
    FRONTIERS IN PHYSICS, 2022, 10
  • [7] Expanding the Silicon Photonics Portfolio With Silicon Nitride Photonic Integrated Circuits
    Rahim, Abdul
    Ryckeboer, Eva
    Subramanian, Ananth Z.
    Clemmen, Stephane
    Kuyken, Bart
    Dhakal, Ashim
    Raza, Ali
    Hermans, Artur
    Muneeb, Muhammad
    Dhoore, Soren
    Li, Yanlu
    Dave, Utsav
    Bienstman, Peter
    Le Thomas, Nicolas
    Roelkens, Gunther
    Van Thourhout, Dries
    Helin, Philippe
    Severi, Simone
    Rottenberg, Xavier
    Baets, Roel
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 2017, 35 (04) : 639 - 649
  • [8] Waveguide magneto-optical devices for photonics integrated circuits [Invited]
    Shoji, Yuya
    Mizumoto, Tetsuya
    OPTICAL MATERIALS EXPRESS, 2018, 8 (08): : 2387 - 2394
  • [9] The simulation design and verification of integrated optical waveguide in silicon photonics
    Hu, Wenliang
    Qi, Zhiqiang
    Sun, Haocheng
    SIXTH SYMPOSIUM ON NOVEL OPTOELECTRONIC DETECTION TECHNOLOGY AND APPLICATIONS, 2020, 11455
  • [10] Devices and architectures for large scale integrated silicon photonics circuits
    Beausoleil, Raymond G.
    Faraon, Andrei
    Fattal, David
    Fiorentino, Marco
    Peng, Zhen
    Santori, Charles
    OPTOELECTRONIC INTEGRATED CIRCUITS XIII, 2011, 7942