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Computer Optics, 2020, Volume 44, Issue 6, Pages 917–922
DOI: https://doi.org/10.18287/2412-6179-CO-718
(Mi co864)
 

This article is cited in 2 scientific papers (total in 2 papers)

OPTO-IT

Modeling the input of radiation into plane linear waveguides using diffraction gratings for a new technology for the manufacture of waveguide systems

V. S. Solovieva, S. P. Timoshenkova, A. S. Timoshenkova, A. I. Vinogradova, N. M. Kondratievb, N. A. Raschepkinac

a National Research University of Electronic Technology, Moscow, Russia
b Russian Quantum Center "RQC", Skolkovo, Moscow, Russia
c Samara State Technical University, Samara, Russia
References:
Abstract: The numerical simulation and selection of optimal parameters of the diffraction grating for a newly developed technology for the manufacture of plane waveguide systems are performed. In contrast to the use of ready-made silicon wafers on an insulator, the new technology has been developed for the manufacture of a fully autonomous radiation input system, a coupling element and the waveguide itself. A general description of the technology of the ‘radiation input – propagation – radiation output’ system is given. Concrete fabrication parameters of the lattice height, the substrate and coating layers are found. The coupling efficiency of radiation input into the waveguide is found to be 30%.
Keywords: linear waveguide, radiation input, waveguide structure, WGM resonator, diffraction grating.
Received: 17.03.2020
Accepted: 16.10.2020
Document Type: Article
Language: Russian
Citation: V. S. Soloviev, S. P. Timoshenkov, A. S. Timoshenkov, A. I. Vinogradov, N. M. Kondratiev, N. A. Raschepkina, “Modeling the input of radiation into plane linear waveguides using diffraction gratings for a new technology for the manufacture of waveguide systems”, Computer Optics, 44:6 (2020), 917–922
Citation in format AMSBIB
\Bibitem{SolTimTim20}
\by V.~S.~Soloviev, S.~P.~Timoshenkov, A.~S.~Timoshenkov, A.~I.~Vinogradov, N.~M.~Kondratiev, N.~A.~Raschepkina
\paper Modeling the input of radiation into plane linear waveguides using diffraction gratings for a new technology for the manufacture of waveguide systems
\jour Computer Optics
\yr 2020
\vol 44
\issue 6
\pages 917--922
\mathnet{http://mi.mathnet.ru/co864}
\crossref{https://doi.org/10.18287/2412-6179-CO-718}
Linking options:
  • https://www.mathnet.ru/eng/co864
  • https://www.mathnet.ru/eng/co/v44/i6/p917
  • This publication is cited in the following 2 articles:
    Citing articles in Google Scholar: Russian citations, English citations
    Related articles in Google Scholar: Russian articles, English articles
    Computer Optics
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