Contribution of Amplified Spontaneous Emission to Output Signals of Laser Active Optical Systems

Yu. N. Saraev, M. V. Trigub, N. A. Vasnev, V. M. Semenchuk, and A. S. Nepomnyashiy, “The imaging of the welding processes with the use of CuBr laser,” Proc. SPIE—Int. Soc. Opt. Eng. 11322, 109 (2019).

L. Li, A. V. Mostovshchikov, A. P. Ilyin, P. A. Antipov, D. V. Shiyanov, and F. A. Gubarev, “In situ nanopowder combustion visualization using laser systems with brightness amplification,” Proc. Combustion Institute 38 (1), 1695–1702 (2021).

Article  Google Scholar 

L. Li, A. V. Mostovshchikov, A. P. Ilyin, A. Smirnov, and F. A. Gubarev, “Optical system with brightness amplification for monitoring the combustion of aluminum-based nanopowders,” IEEE Trans. Instrum. Meas. 69 (2), 457–468 (2020).

Article  ADS  Google Scholar 

F. A. Gubarev, S. Kim, L. Li, A. V. Mostovshchikov, and A. P. Il’in, “An optical system with brightness amplification for studying the surface of metal nanopowders during combustion,’ Instrum. Exp. Tech. 63 (3), 375–382 (2020).

Article  Google Scholar 

M. V. Trigub, N. A. Vasnev, V. D. Kitler, and G. S. Evtushenko, “The use of a bistatic laser monitor for high-speed imaging of combustion processes,” Atmos. Ocean. Opt. 34 (2), 154–159 (2021).

Article  Google Scholar 

L. Li, A. P. Ilyin, F. A. Gubarev, A. V. Mostovshchikov, and M. S. Klenovskii, “Study of self-propagating high-temperature synthesis of aluminium nitride using a laser monitor,” Ceram. Int. 44 (16), 19 800–19 808 (2018).

Article  Google Scholar 

V. V. Osipov, V. V. Platonov, M. V. Trigub, E. V. Tikhonov, N. A. Vasnev, P. I. Gembukh, N. M. Zubarev, and E. A. Kochurin, “Experimental study of melt splashing during yttrium oxide evaporation using ytterbium fiber laser,” Intern. J. Heat Mass Trans. 223, 125237 (2024).

Article  Google Scholar 

M. V. Trigub, N. A. Vasnev, P. I. Gembukh, V. V. Osipov, V. V. Platonov, and E. V. Tikhonov, “Active optical system for high-speed imaging of oxides laser evaporation,” Opt. Laser Technol. 174, 110635 (2024).

Article  Google Scholar 

A. P. Kuznetsov, K. L. Gubskii, A. S. Savjolov, S. A. Sarantsev, A. N. Terekhin, and R. O. Buzhinskij, “Visualization of plasma-induced processes by a projection system with a Cu-laser-based brightness amplifier,” Plasma Phys. Rep. 36 (5), 428–437 (2010).

Article  ADS  Google Scholar 

V. G. Prokoshev, Doctoral Dissertation in Mathematics and Physics (Novosibirsk, 2009).

V. G. Prokoshev, I. I. Klimovskii, and A. F. Galkin, “Vizualization of material laser processing with the use of Cu-laser-based brightness amplifier,” Izv. Akad. Nauk. Ser. Fiz. 61 (8), 1560–164 (1997).

Google Scholar 

G. V. Abrosimov, M. M. Pol’skii, and V. B. Saenko, “Use of a laser medium in photography of a surface shielded by a plasma layer,” Sov. J. Quantum Electron. 18 (4), 544–546 (1988). https://doi.org/10.1070/QE1988v018n04ABEH012099

Article  ADS  Google Scholar 

E. A. Morozova, A. M. Prokhorov, V. V. Savranskii, and G. A. Shafeev, “High-speed frame-by-frame imaging of biological objects using a laser projection microscope,” Dokl. Akad. Nauk SSSR 261 (6), 1460–1462 (1981).

Google Scholar 

K. I. Zemskov, M. A. Kazaryan, V. V. Savranskii, and G. A. Shafeev, “Transmitted-light laser projection microscope,” Sov. J. Quantum Electron. 9 (11), 1464–1465 (1979). https://doi.org/10.1070/QE1979v009n11ABEH009767

Article  ADS  Google Scholar 

K. I. Zemskov, A. A. Isaev, M. A. Kazaryan, and G. G. Petrash, “Laser projection microscope,” Sov. J. Quantum Electron. 4 (1), 5 (1974). https://doi.org/10.1070/QE1974v004n01ABEH005659

Article  ADS  Google Scholar 

E. I. Asinovskii, V. M. Batenin, I. I. Klimovskii, and V. V. Markovets, “Laser-monitor-assisted investigation of the regions of closure of current on the electrodes of an atmospheric-pressure low-current carbon arc,” High Temp. 39 (5), 739–752 (2001). https://doi.org/10.1023/A:1012341329617

Article  Google Scholar 

D. V. Abramov, S. M. Arkelyan, A. F. Galkin, I. I. Klimovskii, A. O. Kucherik, and V. G. Prokoshev, “On the possibility of studying the temporal evolution of a surface relief directly during exposure to high-power radiation,” Quantum Electron. 36 (6), 569–575 (2006). https://doi.org/10.1070/QE2006v036n06ABEH006579

Article  ADS  Google Scholar 

D. V. Abramov, S. M. Arakelyan, A. F. Galkin, L. D. Kvacheva, I. I. Klimovskii, M. A. Kononov, L. A. Mikhalitsyn, A. O. Kucherik, V. G. Prokoshev, and V. V. Savranskii, “Melting of carbon heated by focused laser radiation in air at atmospheric pressure and temperature below 4000 K,” JETP Lett. 84 (5), 258–261 (2006) https://doi.org/10.1134/S0021364006170061

Article  ADS  Google Scholar 

D. V. Abramov, S. M. Arakelyan, A. F. Galkin, A. O. Kucherik, V. G. Prokoshev, and I. I. Klimovskii, “Laser diagnostics of the evolution of a carbon surface exposed to high-power laser pulses,” Instrum. Exp. Tech. 49 (2), 274–279 (2006).

Article  Google Scholar 

K. I. Zemskov, Candidate’s Disseration in Mathematics and Physics (Moscow, 1983).

Google Scholar 

N. A. Vasnev, M. V. Trigub, and G. S. Evtushenko, “Features of operation of a brightness amplifier on copper bromide vapors in the bistatic scheme of a laser monitor,” Atmos. Ocean. Opt. 32 (4), 483 (2019).

Article  Google Scholar 

B. K. Isakov, M. M. Kalugin, and E. N. Parfenov, “Gain in active media on transitions of copper and manganese atoms as applied to the design of projection systems with image brightness amplifiers,” MTF 33 (4), 704–714 (1983).

Google Scholar 

M. A. Kazaryan, V. M. Matveev, and G. G. Petrash, “Projection system with brightness amplifier and autonomous light source,” Izv. Akad. Nauk SSSR. Ser. Fiz. 46 (10), 1898–1904 (1982).

Google Scholar 

F. A. Gubarev, A. V. Mostovshchikov, A. P. Il’in, L. Li, E. Yu. Burkin, and V. V. Sviridov, “A laser monitor with independent lighting and brightness amplification for imaging high-temperature combustion of metal nanopowders,” Tech. Phys. Lett. 47 (5), 372–376 (2021). https://doi.org/10.1134/S1063785021040179

Article  ADS  Google Scholar 

Lima S. Mohammadpour, S. Behrouzinia, and K. Khorasani, “Amplifying characteristics of small-bore copper bromide lasers,” Appl. Phys. B 125 (6), 101 (2019).

Article  ADS  Google Scholar 

K. I. Zemskov, M. A. Kazaryan, T. I. Pekhoshkina, and A. N. Trofimov, “Projection system with a copper chloride vapor image amplifier,” Sov. J. Quantum Electron. 9 (2), 235–237 (1979). https://doi.org/10.1070/QE1979v009n02ABEH008749

Article  ADS  Google Scholar 

G. G. Petrash, K. I. Zemskov, and M. A. Kazaryan, “Optical systems with brightness amplifiers,” in Proc. of Lebedev Physical Institute (Nauka, Moscow, 1991), vol. 206 [in Russian].

Google Scholar 

V. I. Bespalov, G. A. Pasmannik, K. I. Zemskov, and M. A. Kazaryan, Optical Systems and Brightness Amplifiers (IPF AN SSSR, Gor’kii, 1988) [in Russian].

Google Scholar 

M. V. Trigub, N. A. Vasnev, and G. S. Evtushenko, “Operating features of a copper bromide brightness amplifier in the monostatic laser monitor,” Opt. Commun. 480, 126486 (2021).

Article  Google Scholar 

M. V. Trigub and A. E. Kulagin, “Semi-empirical model of a copper bromide vapor brightness amplifier,” Opt. Commun. 573, 130994 (2024).

Article  Google Scholar 

V. A. Dimaki, V. B. Sukhanov, V. O. Troitskii, and A. G. Filonov, “A stabilized copper bromide laser with computer-controlled operating modes and a mean lasing power of 20 W,” Instrum. Exp. Tech. 55 (6), 696–700 (2012).

Article  Google Scholar 

N. A. Lyabin, Doctoral Dissertation in Engineering (Bauman Moscow State Technical University, Moscow, 2014).

C. E. Webb and J. D. C. Jones, Handbook of Laser Technology and Applications, Vol. 3, Laser Components, Properties, and Basic Principles (IoP Publishing, 2004).

C. E. Little, Metal Vapor Lasers: Physics, Engineering & Application (John Willey & Sons, Chichester, 1998).

Google Scholar 

F. A. Gubarev, E. Yu. Burkin, A. V. Mostovshchikov, A. P. Ilyin, and L. Li, “Two-channel system with brightness amplification for monitoring the combustion of aluminum-based nanopowders,” IEEE Trans. Instrum. Meas. 70, 1–9 (2021).

Article  Google Scholar 

M. V. Trigub, N. A. Vasnev, G. S. Evtushenko, and V. A. Dimaki, “A synchronization system for the pulse-periodic operating mode of active media on self-terminating transitions in metal vapors,” Instrum. Exp. Tech. 62 (1), 28–32 (2019).

Article  Google Scholar 

S. M. Lima, S. Behrouzinia, M. K. Salem, M. Elahei, K. Khorasani, and D. Dorranian, “Synchronization effect on the small-signal gain and saturation intensity of a CuBr laser,” Opt. Quantum Electron. 49 (11), 372 (2017).

Article  Google Scholar 

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