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Telecommunications and Radio Engineering

Publicado 12 números por año

ISSN Imprimir: 0040-2508

ISSN En Línea: 1943-6009

SJR: 0.185 SNIP: 0.268 CiteScore™:: 1.5 H-Index: 22

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DIFFERENTIAL PHASE SECTIONS BASED ON FORM BIREFRIGENCE IN THE TERAHERTZ FREQUENCY RANGE

Volumen 74, Edición 8, 2015, pp. 735-744
DOI: 10.1615/TelecomRadEng.v74.i8.70
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SINOPSIS

The polarization transformers, main elements of which are differential phase sections (DPS), are widely used when developing the THz polarization radio measuring ducts. The use of submillimeter waves allows carrying out investigations in radio astronomy, radio spectroscopy, biology, medicine, physics of the atmosphere, etc. Due to the fact that quasi-optical transmission lines are used in the terahertz frequency range the application of optical principles, when developing the DFS based on birefringent dielectrics, is justified. Some crystals (sapphire, Iceland spar, quartz, etc.) have this property. The artificial dielectric structures having the form birefringence property and the structure period commensurable with the wavelength are considered in the paper. Numerical method of integral functionals in the frequency domain is applied for full-wave scattering problem solution. This method is based on three-dimensional integral equations for the equivalent electric and magnetic polarization currents of periodic medium. The conditions of such structures matching with free space are also examined. The matching is performed using dielectric layers. The experimental study of such DFS models is carried out. The results confirm the correctness of the choice of such structures and the conditions of their matching.

REFERENCIAS
  1. Born, M. and Wolf, E., Principles of Optics.

  2. Kirschbaum, H. and Chen, S., A Method of Producing Broad-Band Circular Polarization Employing an Anisotropic Dielectric.

  3. Kikuta, H., Ohira, Y., and Iwata, K., Achromatic quarter-wave plates using the dispersion of form birefringence.

  4. Yachin, V., Substantiation of the field functional method as applied to scattering by a doubly periodic magnetodielectric structure.

  5. Grant of 7-th Program EU "Extended Non-Destructive Testing of Composite Bonds".

  6. Kuleshov, E.M., SubMM waveband measurements.

CITADO POR
  1. Bezborodov Volodymyr, Kosiak Oleg, Kuleshov Yevgen, Variable and broadband differential phase sections in the THz frequency range, 2016 21st International Conference on Microwave, Radar and Wireless Communications (MIKON), 2016. Crossref

  2. Zinenko Tatiana L., Yevgeny Mitrofanovich Kuleshov, 1922–2016 – His contribution to early sub-millimeter wave quasioptics, International Journal of Microwave and Wireless Technologies, 8, 8, 2016. Crossref

  3. Kosiak O. S., Bezborodov V. I., Kuz’michev I. K., Polarization Rotator for Broadband THz Ellipsomete, Radio physics and radio astronomy, 22, 1, 2017. Crossref

  4. Zinenko Tatiana L., Yevgeny M. Kuleshov, human delta-function in Ukrainian microwave science and technology, 2017 IEEE First Ukraine Conference on Electrical and Computer Engineering (UKRCON), 2017. Crossref

  5. Kosiak O. S., Bezborodov V. I., Kuleshov Ye. M., Nesterov P. K., TUNABLE AND BROADBAND DIFFERENTIAL PHASE SECTIONS IN TERAHERTZ FREQUENCY RANGE, Radio physics and radio astronomy, 21, 4, 2016. Crossref

  6. Mizrakhy Sergey, Research and development into sub-THz quasioptics at IRE NASU and modelling challenges, 2016 9th International Kharkiv Symposium on Physics and Engineering of Microwaves, Millimeter and Submillimeter Waves (MSMW), 2016. Crossref

  7. Mizrakhy Sergey, History and perspectives of THz components and circuits using oversize dielectric-lined waveguides, 2017 IEEE First Ukraine Conference on Electrical and Computer Engineering (UKRCON), 2017. Crossref

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