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Kvantovaya Elektronika, 2011, Volume 41, Number 9, Pages 821–823 (Mi qe14677)  

This article is cited in 8 scientific papers (total in 8 papers)

Optical fibres and fibre optic devices

Effect of small variations in the refractive index of the ambient medium on the spectrum of a bent fibre-optic Fabry — Perot interferometer

Yu. N. Kulchin, O. B. Vitrik, S. O. Gurbatov

Institute for Automation and Control Processes, Far Eastern Branch of the Russian Academy of Sciences, Vladivostok

Abstract: The phase of light propagating through a bent optical fibre is shown to depend on the refractive index of the medium surrounding the fibre cladding when there is resonance coupling between the guided core mode and cladding modes. This shifts the spectral maxima in the bent fibre-optic Fabry — Perot interferometer. The highest phase and spectral sensitivities achieved with this interferometer configuration are 0.71 and 0.077, respectively, and enable changes in the refractive index of the ambient medium down to 5×10-6 to be detected. This makes the proposed approach potentially attractive for producing highly stable, precision refractive index sensors capable of solving a wide range of liquid refractometry problems.

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English version:
Quantum Electronics, 2011, 41:9, 821–823

Bibliographic databases:

PACS: 07.60.Ly, 07.60.Vg, 42.81.Pa
Received: 20.06.2011
Revised: 25.07.2011

Citation: Yu. N. Kulchin, O. B. Vitrik, S. O. Gurbatov, “Effect of small variations in the refractive index of the ambient medium on the spectrum of a bent fibre-optic Fabry — Perot interferometer”, Kvantovaya Elektronika, 41:9 (2011), 821–823 [Quantum Electron., 41:9 (2011), 821–823]

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  • http://mi.mathnet.ru/eng/qe/v41/i9/p821

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    Citing articles on Google Scholar: Russian citations, English citations
    Related articles on Google Scholar: Russian articles, English articles

    This publication is cited in the following articles:
    1. V. S. Terent’ev, Optoelectron.Instrument.Proc, 48:4 (2012), 358  crossref  scopus
    2. Quantum Electron., 43:6 (2013), 535–541  mathnet  crossref  adsnasa  isi  elib
    3. A. V. Dyshlyuk, O. B. Vitrik, Yu. N. Kulchin, Kompyuternaya optika, 41:5 (2017), 599–608  mathnet  crossref
    4. Dyshlyuk A.V., Vitrik O.B., Kulchin Yu.N., Mitsai E.V., Cherepakhin A.B., Branger C., Brisset H., Iordache T.V., Sarbu A., J. Lightwave Technol., 35:24 (2017), 5425–5431  crossref  isi  scopus
    5. Dyshlyuk V A., Opt. Lett., 44:2 (2019), 231–234  crossref  isi  scopus
    6. A. V. Dyshlyuk, Kompyuternaya optika, 43:1 (2019), 35–41  mathnet  crossref
    7. Dyshlyuk V A., Eryusheva U.A., Vitrik O.B., J. Lightwave Technol., 38:24 (2020), 6918–6923  crossref  isi  scopus
    8. A. V. Dyshlyuk, U. A. Eryusheva, O. B. Vitrik, Kompyuternaya optika, 45:1 (2021), 38–44  mathnet  crossref
  • Квантовая электроника Quantum Electronics
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