G. A. Ivanov
Russian Academy of Sciences
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Featured researches published by G. A. Ivanov.
Technical Physics Letters | 2009
V. V. Voloshin; I. L. Vorob’ev; G. A. Ivanov; V. A. Isaev; A. O. Kolosovskii; S. M. Popov; Yu. K. Chamorovskii
The effect of heating in air on the optical losses in metal-coated fibers has been studied. Two fibers were drawn from the same silica preform and coated by different metals (copper and aluminum). Dependences of a change in the optical losses on the temperature were measured in a 20–400°C range at a 50°C step. The optical losses of metal-coated fibers heated to temperatures below 300°C change mostly due to the microbending contribution. At temperatures above 300°C, the main contribution to increasing optical losses is due to the absorption on OH groups. It is established for the first time that the contribution to optical losses due to the OH groups is much more pronounced in Al-coated fibers than in Cu-coated ones. In addition, the Al-coated fibers exhibit growth in the optical losses above 300°C due the absorption on molecular hydrogen.
Journal of Communications Technology and Electronics | 2011
V. V. Voloshin; I. L. Vorob’ev; G. A. Ivanov; V. A. Isaev; A. O. Kolosovskii; B. Lenardich; S. M. Popov; Yu. K. Chamorovskii
Thermally induced variations in the optical loss of optical fibers with metal (copper and aluminum) coatings are studied. It is demonstrated that an increase in the loss related to the OH groups depends on the medium in which the annealing takes place (an increase in the loss related to the OH groups in argon is greater than the increase in air) and on the dopant (an increase in the loss in the core doped with GeO2 + P2O5 is greater than the increase in GeO2).
Journal of Communications Technology and Electronics | 2009
V. V. Voloshin; I. L. Vorob’ev; G. A. Ivanov; A. O. Kolosovskii; Yu. K. Chamorovskii; Oleg V. Butov; K.M. Golant
A radiation resistant optical fiber with a high birefringence is fabricated on the basis of nitrogen-doped silica glass using the PANDA technology and studied. The loss in this fiber for an absorbed @[gamma]-radiation dose of 2–10 kGy does not exceed 5–10 dB/km, which is an order of magnitude lower than that of standard telecommunication fibers with a germanium silicate core.
Journal of Communications Technology and Electronics | 2006
V. A. Aksenov; I. L. Vorob’ev; V. V. Voloshin; K. V. Zagorodnov; G. A. Ivanov; V. A. Isaev; A. O. Kolosovskii; E. N. Korshunova; S. A. Nikitov; S. K. Morshnev; Yu. K. Chamorovskii; A. D. Shatrov
A new method for calculating the radiation loss and chromatic dispersion of leaky modes propagating in microstructured (holey) optical fibers (MOFs) with circular air-filled channels is proposed and implemented numerically. It is shown that the results are in good agreement with both the known numerical data and with the experimental data obtained for two types of fabricated MOFs that contain, respectively, 30 and 60 channels.
Measurement Techniques | 2004
P. G. Kryukov; A. E. Levchenko; A. V. Belov; A. N. Kireev; A. V. Konyashchenko; A. V. Sharkov; Mikhail A. Gubin; I. L. Vorob'ev; G. A. Ivanov; Yu. K. Chamorovskii
Supercontinuum generation in holey fibers manufactured at the University of Bath (Great Britain) and at the Institute of Radioengineering and Electronics of the Russian Academy of Sciences is produced through use of a Ti:sapphire femtosecond laser. Broadening of the radiation spectrum of a Cr:forsterite femtosecond laser (λ = 1250 nm) is observed in these fiber samples. The present study is part of a program intended for the creation of an optical femtosecond synthesizer stabilized relative to a methane optical frequency standard (λ = 3390 nm).
Inorganic Materials | 1998
V. A. Aksenov; E. N. Bazarov; A. V. Belov; E. M. Dianov; G. A. Ivanov; V. A. Isaev; V. V. Koltashev; A. A. Makovetskil; K. M. Nametov; V. G. Plotnichenko; Yu. K. Chamorovskii
Measurement Techniques | 2004
P. G. Kryukov; A. E. Levchenko; A. V. Belov; A. N. Kireev; Aleksandr V. Konyashchenko; A. V. Sharkov; Mikhail A. Gubin; I. L. Vorob'ev; G. A. Ivanov; Yu. K. Chamorovskii
Journal of Communications Technology and Electronics | 2002
V. A. Aksenov; V. V. Voloshin; I. L. Vorob'ev; G. A. Ivanov; V. A. Isaev; A. O. Kolosovskii; S. K. Morshnev; Yu. K. Chamorovskii
Journal of Communications Technology and Electronics | 1998
V. A. Aksenov; A. V. Belov; E. M. Dianov; G. A. Ivanov; S. V. Lavrishchev; K. M. Nametov; Yu. K. Chamorovskii; O. E. Shushpanov
Archive | 1990
V. V. Grigor'iants; G. A. Ivanov; Victor A. Isaev; E. D. Isaikina; O. R. Mamedli