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Tytuł artykułu

Design of athermal arrayed waveguide grating using silica/polymer hybrid materials.

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This study demonstrates a novel athermal arrayed waveguide grating (AWG) which is composed of silica/polymer hybrid materials on a silicon substrate. The temperature-dependent wavelength shift of the AWG depends on the refractive indices of the materials and the size of the waveguide. The athermalization of the AWG can be realized by selecting the proper values of the material and structural parameters of the device.
Czasopismo
Rocznik
Strony
305--312
Opis fizyczny
Bibliogr. 12 poz.
Twórcy
autor
autor
autor
autor
autor
autor
  • State Key Laboratory on Integrated Optolectronics, Collage of Electronic science and Engineering, Jilin University, Changchun 130012, China, mesheng@163.com
Bibliografia
  • [1] STARING A.A.M., SMIT M.K., Phased-array-based photonic integrated circuits for wavelength division multiplexing applications, IEICE Transactions on Electronics E80-C(5), 1997, pp. 646–53.
  • [2] ROBITAILLE L., CALLENDER C.L., NOAD J.P., Polymer waveguide devices for WDM applications, Proceedings of the SPIE 3281, 1998, pp. 14–24.
  • [3] KOTELES E.S., Integrated planar waveguide demultiplexers for high-density WDM applications, Fiber and Integrated Optics 18(4),1999, pp. 211–44.
  • [4] HIROTA H., ITOH M., OGUMA M., HIBINO Y., Athermal arrayed-waveguide grating multi/demultiplexers composed of TiO2-SiO2 waveguides on Si, IEEE Photonics Technology Letters 17(2), 2005, pp. 375–77.
  • [5] INOUE Y., KANEKO A., HANAWA F., TAKAHASHI H., HATTORI K., SUMIDA S., Athermal silica-based arrayed-waveguide grating multiplexer, Electronics Letters 33(23), 1997, pp. 1945–7.
  • [6] KANEKO A., KAMEI S., INOUE Y., TAKAHASHI H., SUGITA A., Athermal silica-based arrayed-waveguide grating (AWG) multi/demultiplexer with new low loss groove design, Electronics Letters 36(4), 2000, pp. 318–9.
  • [7] TANOBE H., KONDO Y., KADOTA Y., OKAMOTO K., YOSHIKUNI Y., Temperature insensitive arrayed waveguide gratings on InP substrates, IEEE Photonics Technology Letters 10(2), 1998, pp. 235–7.
  • [8] KEIL N., YAO H.H., ZAWADZKI C., BAUER J., BAUER M., DREYER C., SCHNEIDER J., Athermal all-polymer arrayed-waveguide grating multiplexer, Electronics Letters 37(9), 2001, pp. 579–80.
  • [9] OOBA N., HIBINO Y., INOUE Y., SUGITA A., Athermal silica-based arrayed-waveguide grating multiplexer using bimetal plate temperature compensator, Electronics Letters 36(21), 2000, pp. 1800–1.
  • [10] MARU K., OHKAWA M., NOUNEN H., TAKASUGI S., KASHIMURA S., OKANO H., UETSUKA H., Athermal and center wavelength adjustable arrayed-waveguide grating, Optical Fiber Communication Conference, Technical Digest, Vol. 2, 2000, pp. 130–2.
  • [11] KOKUBUN Y., FUNATO N., TAKIZAWA M., Athermal waveguide for temperature-independent lightwave devices, IEEE Photonics Technology Letters 5(11), 1993, pp. 1297–300.
  • [12] ZHU D.Q., XU Z., LU D.S., An athermal AWG with hybrid material structure waveguide, Proceedings of the SPIE 4904, 2002, pp. 485–9.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPW9-0004-0101
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