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Kvantovaya Elektronika, 2011, Volume 41, Number 9, Pages 815–820 (Mi qe14587)  

This article is cited in 5 scientific papers (total in 5 papers)

Optical fibres and fibre optic devices

Efficient direct magneto-optical phase modulationof light waves in spun microstructured fibres

V. P. Gubin, S. K. Morshnev, N. I. Starostin, Yu. K. Chamorovsky, A. I. Sazonov, Ya. V. Przhiyalkovskiy, A. I. Boev

Kotelnikov Institute of Radioengineering and Electronics, Fryazino Branch, Russian Academy of Sciences

Abstract: We have proposed a phase modulator of optical radiation for an interferometric electric-current sensor. The modulator takes advantage of the Faraday effect in spun microstructured optical fibres. Such fibres enable small-diameter multiturn fibre coils to be produced, which is necessary for achieving a preset phase modulation amplitude at a moderate drive current. The principal characteristics of the modulator have been studied experimentally: frequency response, magneto-optical sensitivity and output signal contrast. The results demonstrate that the modulator ensures high efficiency, approaching the theoretical one, provided the modulation period exceeds the time it takes light to pass through the fibre. We have examined the influence of spun fibre parameters on the performance of the modulator.

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English version:
Quantum Electronics, 2011, 41:9, 815–820

Bibliographic databases:

PACS: 42.81.Wg, 42.81.Pa, 78.20.Ls, 42.79.Hp
Received: 14.03.2011
Revised: 23.05.2011

Citation: V. P. Gubin, S. K. Morshnev, N. I. Starostin, Yu. K. Chamorovsky, A. I. Sazonov, Ya. V. Przhiyalkovskiy, A. I. Boev, “Efficient direct magneto-optical phase modulationof light waves in spun microstructured fibres”, Kvantovaya Elektronika, 41:9 (2011), 815–820 [Quantum Electron., 41:9 (2011), 815–820]

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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. Quantum Electron., 43:2 (2013), 167–173  mathnet  crossref  adsnasa  isi  elib
    2. Quantum Electron., 44:10 (2014), 957–964  mathnet  crossref  isi  elib
    3. Quantum Electron., 45:8 (2015), 754–758  mathnet  crossref  isi  elib
    4. Quantum Electron., 48:1 (2018), 62–69  mathnet  crossref  isi  elib
    5. Quantum Electron., 49:9 (2019), 887–893  mathnet  crossref  isi  elib
  • Квантовая электроника Quantum Electronics
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