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Kvantovaya Elektronika, 2010, Volume 40, Number 10, Pages 851–854 (Mi qe14379)  

This article is cited in 13 scientific papers (total in 13 papers)

Lasers

A semiconductor ring laser: study of its characteristics as a rotation sensor

V. V. Akparova, V. G. Dmitrievb, V. P. Duraevb, A. A. Kazakovb

a "Nolatech" Joint-Stock Company, Moscow
b Polyus Research and Development Institute named after M. F. Stel'makh, Moscow

Abstract: A semiconductor ring laser (SRL) with a radiation wavelength of 1540 nm and a fibre ring cavity is developed and studied in several main lasing regimes. An SRL design based on a semiconductor optical travelling-wave amplifier and a ring cavity, composed of a single-mode polarisation-maintaining fibre, is considered. The SRL is studied in the regime of a rotation speed sensor, in which the frequency shift of counterpropagating waves in the SRL is proportional to its rotation speed. The minimum rotation speed that can be detected using the SRL under consideration depends on the cavity length; in our experiment it turned to be 1deg s-1. The changes in the threshold current, emission spectrum, and fundamental radiation wavelength upon closing and opening the SRL ring cavity and with a change in its radius are also investigated.

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English version:
Quantum Electronics, 2010, 40:10, 851–854

Bibliographic databases:

PACS: 42.55.Px, 42.60.Da, 42.81.Pa
Received: 18.06.2010

Citation: V. V. Akparov, V. G. Dmitriev, V. P. Duraev, A. A. Kazakov, “A semiconductor ring laser: study of its characteristics as a rotation sensor”, Kvantovaya Elektronika, 40:10 (2010), 851–854 [Quantum Electron., 40:10 (2010), 851–854]

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  • http://mi.mathnet.ru/eng/qe/v40/i10/p851

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    Citing articles on Google Scholar: Russian citations, English citations
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    1. Quantum Electron., 43:10 (2013), 914–916  mathnet  crossref  adsnasa  isi  elib
    2. G. B. Malykin, Phys. Usp., 57:7 (2014), 714–720  mathnet  crossref  crossref  adsnasa  isi  elib  elib
    3. G. B. Malykin, Radiophys Quantum El, 2014  crossref  isi  elib  scopus
    4. Quantum Electron., 44:4 (2014), 362–363  mathnet  crossref  isi  elib
    5. Bochkova E.N., Broslavets Yu.Yu., Fomichev A.A., Duraev V.P., 2014 International Conference Laser Optics, IEEE, 2014  isi
    6. Khandelwal A., Syed A., Nayak J., 2015 Workshop on Recent Advances in Photonics (Wrap), IEEE, 2015, 1570213427  isi
    7. Quantum Electron., 46:6 (2016), 567–573  mathnet  crossref  isi  elib
    8. Khandelwal A., Syed A., Nayak J., Appl. Optics, 55:19 (2016), 5187–5191  crossref  isi  elib  scopus
    9. Khandelwal A., Syed A., Nayak J., 2016 IEEE Photonics Conference (Ipc), IEEE Photonics Conference, IEEE, 2016, 480–481  isi
    10. Khandelwal A., Syed A., Nayak J., J. Opt.-India, 46:1 (2017), 8–15  crossref  isi  scopus
    11. Liang W., Savchenkov A., Ilchenko V., Griffith R., De Cuir E., Kim S., Matsko A., Maleki L., Opt. Lett., 42:22 (2017), 4736–4739  crossref  isi  scopus
    12. Krylov A.A., Chernykh D.S., Obraztsova E.D., Laser Phys., 28:1 (2018), 015103  crossref  mathscinet  isi  scopus
    13. Quantum Electron., 51:6 (2021), 554–561  mathnet  crossref  isi  elib
  • Квантовая электроника Quantum Electronics
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