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Photonic structures with grating couplers based on ZnO

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Języki publikacji
EN
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EN
The paper presents investigations concerning the design and realization of photonic structures with grating couplers. The first part of the paper deals with basic theoretical information on photonic structures with grating couplers and their appli- cation in optoelectronics. The further part presents the results of numerical investigations on photonic structures with grating couplers and shows the influence of geometrical parameters on the effectiveness of the input and output of optic power into and out of this photonic structure. The paper also provides the results of experimental investigations on a wideband gap semiconductor, viz. zinc oxide ZnO, as well as its application in planar waveguide structures and photonic structures with grating couplers.
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  • Department of Optoelectronics, Silesian University of Technology, 2A Akademicka Str., 44-100 Gliwice, Poland, Przemyslaw.Struk@polsl.pl
Bibliografia
  • [1] Ü. Özgür, Y. I. Alivov, C. Liu, A. Teke, M. A. Reshchikov, S. Doan, V. Avrutin, S. J. Cho, and H. Morkoç, “A comprehensive review of ZnO materials and devices”, J. Appl. Phys. 98, 041301 (2005).
  • [2] R. G. Heideman, P. V. Lambeck, and J. G. E. Gardeniers, “High quality ZnO layers with adjustable refractive indices for integrated optics applications”, Opt. Mater. 4, 127-138 (1995).
  • [3] P. Struk and T. Pustelny, “Design and numerical analyses of planar grating coupler”, Bull. Pol. Acad. Sci.-Te. 58, 509-512 (2010).
  • [4] P. V. Lambeck, “Integrated optical sensors for the chemical domain”, Meas. Sci. Technol. 17, R93-R116 (2006).
  • [5] B. Pustelny and T. Pustelny, “Transverse acoustoelectric effect applying in surface study of GaP:Te (111)”, Acta Phys. Pol. A116, 383-384 (2009).
  • [6] W. Lukosz, “Integrated optical chemical and direct biochemical sensors”, Sensor. Actuator. B29, 37-50 (1995).
  • [7] T. Pustelny, I. Zielonka, C. Tyszkiewicz, P. Karasinski, and B. Pustelny, “Impressing technology of optical Bragg's gratings on planar optical sol-gel waveguides”, Opto-Electron. Rev. 14, 161-168 (2006).
  • [8] H. Meixner and U. Lampe, “Metal oxide sensors”, Sensor. Actuat. B-Chem. 33, 198-202 (1996).
  • [9] T. Pustelny, A. Opilski, and B. Pustelny, “Determination of some kinetic parameters of fast surface states in silicon single crystals by means of surface acoustic wave method”, Acta Phys. Pol. A114, A183-A190 (2008).
  • [10] P. Struk, T. Pustelny, K. Gut, K. Gołaszewska, E. Kamińska, M. Ekielski, I. Pasternak, E. Łusakowska, and A. Piotrkowska, “Planar optical waveguides based on thin ZnO layers”, Acta Phys. Pol. A116, 414-418 (2009).
  • [11] K. Gołaszewska, E. Kamińska, T. Pustelny, P. Struk, T. Piotrowski, A. Piotrowska, M. Ekielski, R. Kruszka, M. Wzorek, M. Borysiewicz, I. Pasternak and K. Gut, “Planar optical waveguides for application in optoelectronic gas sensors”, Acta Phys. Pol. A114, 223-230 (2008).
  • [12] C. Jagadish and S. Pearton, Zinc Oxide Bulk, Thin Films and Nanostructures, Elsevier, 2006.
  • [13] P. Karasiński, “Embossable grating couplers for planar evanescent wave sensors”, Opto-Electron. Rev. 19, 10-21 (2011).
  • [14] T. Pustelny and M. Grabka, “Numerical investigation of the photonic-crystal fibres with suspended core”, Acta Phys. Pol. A116, 385-388 (2009).
  • [15] K. Yee, “Numerical solution of initial boundary value problems involving Maxwell's equations in isotropic media”, Antennas and Propagation, IEEE Transactions 3, 302-307 (1966).
  • [16] C. Kopp and A. Chelnokov, “Fiber grating couplers for silicon nanophotonic circuits: Design modelling methodology and fabrication tolerances”, Opt. Commun. 282, 4242-4248 (2009).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BWAW-0007-0008
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