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Dive into the research topics where V. G. Sidorovich is active.

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Featured researches published by V. G. Sidorovich.


High-power lasers and applications | 2002

Mitigation of aberration in a beam-shaping telescope and optical inhomogeinity in a free-space optical path using an extended light source coupled to the telescope

V. G. Sidorovich; Valery V. Ragulsky; Michael V. Vasil'ev; Aleksey A. Leshchev; Michael A. Sadovnikov

One important challenge to implementation of efficient free- space optical (FSO) systems is optical signal scintillation and fade caused by atmospheric turbulence and optical aberration in output beam shaping devices and windows. A new method for mitigation of these harmful effects to delivery of optical radiation to remote subscriber terminals, such as aberration and refraction index non-uniformity in a free- space path, has been developed and tested in field experiments. A known approach to damping optical signal scintillation caused by turbulence in a free-space path was based on forming several substantially parallel optical beams modulated by the same transmit signal and overlapping such beams on a receive optical aperture. The beams transmitted through different free-space paths with uncorrelated optical inhomogenity have different, uncorrelated, transverse distribution of light intensity. Their overlapping provides for averaging out the light intensity non-uniformity and efficient suppression of the signal scintillation. The existing approach to mitigation of optical aberration in atmosphere requires targeting several beam shaping telescopes at a subscriber. This is not always practical. For example, in point-multipoint FSO systems servicing multiple subscribers it is advisable to allocate one telescope per subscriber to achieve highest compactness and cost effectiveness of a system. Also the existing method has limitations in solving a problem of window glass optical inhomogenity and aberration in the telescope itself. A new method for optical aberration mitigation is based on using an extended light source with sufficiently large emitting surface and properly selected width of output radiation angular spectrum coupled to the telescope targeted at a subscriber terminal. The method has been implemented in a point-multipoint base terminal having multiple output beams that could be independently targeted at different subscriber terminals. Results of the trial are presented in this paper. The extended source with given light emitting surface diameter d and angular spectrum width (Theta) may be implemented with an optical fiber having core diameter d and numerical aperture NA equals sin((Theta) /2) installed in optical path between a light source with compact light emitting surface, such as a semiconductor laser, and the telescope. Exit end of such fiber coupled to the telescope acts as an extended light source with angular size (alpha) determined by the fiber core diameter and a focal length of the telescope via a formula (alpha) equals d/f. It has been proven in our field experiments, that by using the source with properly selected angular size and angular spectrum width the following results may be achieved with single telescope targeted at a subscriber terminal: (a) damping of optical signal scintillation at a remote photo-detector (the signal standard deviation has been decreased by several times for wide range of scintillation indexes); and (b) elimination of the signal fade caused by aberration in the telescope and output window (in our experiments the extended source provided 5 to 30 times increase in average signal power at the photodetector for a variety of window glass samples used in residential construction).


International Journal of Nonlinear Optical Physics | 1994

NONRECIPROCAL OPTICAL SYSTEMS WITH PHASE-CONJUGATING MIRRORS — A NEW CLASS OF OPTICAL IMAGING SYSTEM

Alexey Leshchev; V. G. Sidorovich; M.V. Vasil’Ev; V.Yu. Venediktov; G.A. Pasmanik

A method for removing some of the restrictions imposed in conventional phase conjugation imaging applications is proposed. It provides the possibility of transformation of both the image scale and its distance from the imaging lens system. Theoretical treatments and numerical results for the paraxial as well as the nonparaxial cases are presented, along with experimental demonstrations of the feasibility of this method.


1994 Symposium on Astronomical Telescopes & Instrumentation for the 21st Century | 1994

Wide-aperture laser telescope with the phase-conjugation compensation of the segmented main mirror

Michael V. Vasil'ev; Vladimir Yu. Venediktov; Alexey Leshchev; Pavel M. Semenov; Oleg V. Solodyankin; V. G. Sidorovich

The results cI experimental realizaticu of the 1as telescce with the phase-axijugation axnpensaticii 1 segmented main mirrcr w ith the diameter 300 mm, focal length 1200 mm are presented. The expiment results, which are correlated witti the numerical model results, show the pcssibility of diffraction limited image formation while segments angle irusmatch is up to 13X 1O and step mistake up to several dozen of micrometers.


Soviet Journal of Quantum Electronics | 1991

Large-aperture telescopic laser system with phase-conjugation compensation of distortions of a segmented main mirror

Michail V. Vasil'ev; Vladimir Yu. Venediktov; Alexey Leshchev; Pavel M. Semenov; V. G. Sidorovich; Oleg V. Solodyankin


Optics and Spectroscopy | 1991

Reduction of contrast of speckle structure in an image on laser illumination

Michael V. Vasil'Ev; V. Y. Venediktov; Alexey Leshchev; Pavel M. Semenov; V. G. Sidorovich; O. V. Solodyankin


Optics and Spectroscopy | 1984

Disruption of phase conjugation during excitation of stimulated Brillouin scattering by incoherent optical radiation

Michael V. Vasil'ev; Pavel M. Semenov; V. G. Sidorovich


Optics and Spectroscopy | 1982

Phase conjugation of incoherent light during stimulated Brillouin scattering

E. L. Bubis; Michael V. Vasil'Ev; Alexey Leshchev; G. A. Pasmanik; V. G. Sidorovich; A. A. Shilov


Optics and Spectroscopy | 1981

Investigation of angular and spectral selectivity of a hypersonic hologram

Michael V. Vasil'Ev; P. N. Semenov; V. G. Sidorovich


Optics and Spectroscopy | 1978

Method of optimizing 3-D hologram recording conditions

N. D. Vorzobova; Alexey A Leshchev; Pavel M. Semenov; V. G. Sidorovich; D. I. Staselko


conference on lasers and electro-optics | 1991

Nonreciprocal optical systems with phase-conjugating mirrors: the new class of optical imaging systems

Alexey Leshchev; V. G. Sidorovich; Michail V. Vasil'ev; Vladimir Yu. Venediktov; German A. Pasmanik

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Pavel M. Semenov

Vavilov State Optical Institute

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Alexey Leshchev

Vavilov State Optical Institute

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Michael V. Vasil'ev

Vavilov State Optical Institute

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Vladimir Yu. Venediktov

Vavilov State Optical Institute

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Oleg V. Solodyankin

Vavilov State Optical Institute

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V. Yu. Venediktov

Vavilov State Optical Institute

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