V. G. Borodin
Vavilov State Optical Institute
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Featured researches published by V. G. Borodin.
Jetp Letters | 2004
Alexander A. Andreev; V. P. Andrianov; V. G. Borodin; V. M. Komarov; V. A. Malinov; Nikolai V. Nikitin; A. V. Serdyukov; A. V. Charukhchev; V. N. Chernov; K. Yu. Platonov; A. V. Bessarab; S. G. Garanin; A. A. Gorbunov; N. A. Suslov
The proton and deuteron yields from thin targets irradiated by a picosecond laser pulse with an average radiation intensity of ≤4×1018 W/cm2 at the target were measured in the megaelectron-volt energy range. A ring structure was observed for the outgoing ions, and the angular ion-beam divergence was found to be extremely small (0.5°). The fast-ion generation mechanism allowing for the appearance of ring structure is discussed, and the characteristic energies and spatioangular ion-beam distribution are estimated.
Journal of Optical Technology | 2010
V. G. Borodin; I. G. Rozivika; A. V. Charukhchev; V. N. Chekal
This paper discusses the features of using a small tool to shape the working surfaces of compact disk-shaped active elements. The results of measuring the fine-structure error are presented. An algorithm is presented for numerically modelling the wave-front distortions of a beam transmitted through an arbitrary number of elements that contain fine-structure error, along with the results of the modelling.
Journal of Optical Technology | 2009
V. G. Borodin; V. M. Komarov; V. A. Malinov; V. M. Migel; S. N. Ospennikova; S. L. Potapov; A. V. Charukhchev; Alexander A. Andreev; K. Yu. Platonov
This paper presents the results of studies of the acceleration of macroparticles consisting of fragments of matter from the back side of a solid target when its front surface is irradiated with a picosecond laser pulse with intensity 1013–1015W∕cm2. It is experimentally shown that there are optimal conditions for maximizing the spalling momentum of the target fragments, depending on its thickness and the intensity of the laser pulse on the front surface. The focusing of melted fragments of the substance, split off from the back surface of a target made in the form of a hemisphere, is experimentally demonstrated. The spalling momentum from such a target is greater than the momentum from a flat target of the same thickness by a factor of 6 –7.
Proceedings of SPIE, the International Society for Optical Engineering | 2007
A. A. Andreev; V. G. Borodin; V. N. Chernov; V. Charukhchev; V. M. Komarov; V. A. Malinov; V. M. Migel; Nikolai V. Nikitin; K. Yu. Platonov
It was found that maximum particle output and best possible spatial uniformity of proton beam took place for two-layer target when the front layer was the high-Z film. It was shown that the ion radiography of the convenient objects with using the two-layer targets allow to get the projecting pictures with high spatial resolution that was about one micron. Threshold spatial sensitivity of proton radiography is estimated.
Proceedings of SPIE, the International Society for Optical Engineering | 2006
A. A. Andreev; V. G. Borodin; V. N. Chernov; V. Charukhchev; V. M. Komarov; V. A. Malinov; V. M. Migel; Nikolai V. Nikitin; K. Yu. Platonov; Y. Q. Gu; Z. J. Zheng; J. B. Chen; W. Hong; W. Z. Huang; J. X. Ge
Laser plasma produced with high-intensity picosecond laser pulse like proton source for radiography was investigated. It was found that maximum particle output and best possible spatial uniformity of proton beam took place for two-layer target when the front layer was the high-Z film. It was shown that the ion radiography of the convenient objects with using the two-layer targets allow to get the projecting pictues with high spatial resolution that was about one micron. The explanation of such high spatial resolution is in laminar motion of ion flow. Threshold spatial sensitivity of proton radiography is estimated.
Laser Optics 2003: Superintense Light Fields and Ultrafast Processes | 2004
V. G. Borodin; V. M. Komarov; V. A. Malinov; Nikolai V. Nikitin; Alexander A. Andreev; V. P. Andrianov; Alexander V. Charukhchev; V. N. Chernov; Konstantin Yu Platonov
Results of fast light ion yield measurements are presented. Laser-plasma experiments were carried out on picosecond laser PROGRESS-P at laser intensities on a target to be 1 ÷ 4•1018 W/cm2. Ring image and extremely small angular divergence of fast ion beam were found. Hard ions with energy more than 8 MeV were recorded. Model of fast ion generation is discussed and typical energy and spatial distribution of fast ion extension are estimated.
26th European Conference on Laser Interaction with Matter (ECLIM 2000) | 2001
V. G. Borodin; Alexander V. Charukchev; V. N. Chernov; Oleg N. Gilev; Anatoly L. Zapysov; Vladimir V. Il'in; V. M. Komarov; V. A. Malinov; Vaycheslav M. Migel; Nikolai V. Nikitin; V. N. Saprikin
The interaction of a 1053 nm picosecond laser pulse with a solid target for focused intensities of up to 1019 W/cm2 are studied by measurements of the absorption of the laser light in the plasma and by measurements of the production of hard x-rays. Absorption measurements are made by collecting the scattered light in set of calorimeters. Light scattered in backward and specular directions is collected separately. Measurements are presented for both high and low Z targets. Hard x-ray spectrum in range 15-1000 keV and hot electron production in range 1-22 MeV are measured using a multichannel filter/scintillator and filter/semiconductor spectrometers. Spatial parameters of fast ions are studied.
Superstrong fields in plasmas | 1998
V. G. Borodin; Alexander V. Charukchev; V. N. Chernov; V. M. Komarov; S. V. Krasov; V. A. Malinov; Vaycheslav M. Migel; Nikolai V. Nikitin; Valentin S. Popov; S. L. Potapov
Chirped pulse amplification was implemented in one of six amplifier chains “Progress” phosphate Nd:glass laser system. Laser system configuration and performance are presented. Formation of 300ps chirped pulse at 1053 nm with energy up to 1 J is made by using developed starting laser which consists of Nd:YLF oscillator, optical fiber, stretcher and three amplifiers with output aperture 20 mm. The large amplifier chain of the laser system includes three rod amplifiers with the aperture of output rod of 85 mm. Preliminary experiments have been carried out yielding output chirped pulses of up to 45 J and compression them to 1.5 ps by grating compressor.
Proceedings of SPIE, the International Society for Optical Engineering | 1998
V. A. Malinov; Alexander V. Charukchev; V. N. Chernov; Nikolai V. Nikitin; V. G. Borodin; Vladimir V. Iljin; V. M. Komarov; Vaycheslav M. Migel; Valentin S. Popov; S. L. Potapov
We present performance of PROGRESS Nd:glass laser facility which consists of a six beam PROGRESS-M phosphate Nd:glass laser, 30 TW PROGRESS-P picosecond YLF:Nd glass laser, which uses chirped pulse amplification (CPA) technique and target chamber. Laser is capable to focus simultaneously at 1,054 micrometer the energy of 1.5 kJ in 1.5 ns and power of 3.5 TW in 200 ps on the fusion target. We report performance of a single beam 0.5 kJ PROGRESS-1M laser. This laser with output rod amplifier 14 cm is the prolongation of one of the beam of the multi-beam laser. PROGRESS-P CPA laser uses YLF:Nd oscillator, single mode optical fiber, Nd:glass rod amplifiers with output diameter of 85 mm. At the output, the chirped pulse with energy about 45 J is compressed up to 1.4 ps in the single-pass compressor on two holographic gratings, which produces power of 22 TW.
Laser Optics '98: Superstrong Laser Fields and Applications | 1998
Alexander V. Charukchev; V. N. Chernov; V. A. Malinov; Nikolai V. Nikitin; V. G. Borodin; Vladimir M. Efanov; Vladimir V. Iljin; V. M. Komarov; Vaycheslav M. Migel; Valentin S. Popov; S. L. Potapov
We present performance of PROGRESS Nd:glass laser facility which consists of a six beam phosphate Nd:glass laser, 30 TW PROGRESS-P picosecond YLF:Nd glass laser, which uses chirped pulse amplification technique and target chamber. PROGRESS-M laser is capable to focus simultaneously at 1,054 micrometers the energy of 1.5 kJ PROGRESS-1M laser. This laser with output rod amplifier 14 cm is the prolongation of one of the beam of the multi-beam laser. PROGRESS-P CPA laser uses YLF:Nd oscillator, single mode optical fiber, Nd:glass rod amplifiers with output diameter of 85 mm. At the output, the chirped pulse with energy about 45 J is compressed up to 1.4 ps in the single-pass compressor on two holographic gratings, which produces power of 22 TW.