Works matching DE "METAL vapor lasers"
Results: 72
Features of Calculation of the Equation of State, Composition, and Conductivity for a Plasma of Dense, Supercritical Metal Vapors—a Plasma Fluid.
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- Journal of Experimental & Theoretical Physics, 2017, v. 125, n. 6, p. 1189, doi. 10.1134/S1063776117120135
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An alkali metal vapor laser amplifier.
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- Journal of Experimental & Theoretical Physics, 2014, v. 119, n. 1, p. 24, doi. 10.1134/S106377611407005X
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Modeling of a diode four-side pumped cesium vapor laser amplifier with flowing medium.
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- Applied Physics B: Lasers & Optics, 2017, v. 123, n. 3, p. 1, doi. 10.1007/s00340-017-6657-3
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A three-level model for alkali metal vapor lasers. Part II: broadband optical pumping.
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- Applied Physics B: Lasers & Optics, 2013, v. 112, n. 4, p. 507, doi. 10.1007/s00340-013-5371-z
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A three-level analytic model for alkali metal vapor lasers: part I. Narrowband optical pumping.
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- Applied Physics B: Lasers & Optics, 2010, v. 101, n. 1/2, p. 45, doi. 10.1007/s00340-010-4050-6
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Spectral structure of 510.6 and 578.2 nm lines in a CuBr vapor laser.
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- Applied Physics B: Lasers & Optics, 2009, v. 94, n. 3, p. 513, doi. 10.1007/s00340-008-3345-3
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Temperature range and conditions of stable operation of gas-discharge rare-earth metal vapor lasers.
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- Applied Physics B: Lasers & Optics, 2008, v. 92, n. 2, p. 225, doi. 10.1007/s00340-008-3090-7
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Pulsed barium vapor laser with hydrogen additive and interactive circuit.
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- Applied Physics B: Lasers & Optics, 2006, v. 82, n. 2, p. 295, doi. 10.1007/s00340-005-2052-6
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On the stability of the output characteristics of a grazing incidence grating dye laser transversely pumped by a copper vapor laser.
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- Applied Physics B: Lasers & Optics, 2006, v. 82, n. 1, p. 71, doi. 10.1007/s00340-005-2040-x
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Copper Vapor Laser and Microsclerotherapy of Facial Telangiectases.
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- Journal of Dermatologic Surgery & Oncology, 1994, v. 20, n. 1, p. 48, doi. 10.1111/j.1524-4725.1994.tb03749.x
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New Developments with the Heavy Metal Vapor Laser for the Dermatologist.
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- Journal of Dermatologic Surgery & Oncology, 1987, v. 13, n. 2, p. 163, doi. 10.1111/j.1524-4725.1987.tb00514.x
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Quasicontinuous wave linearly polarized rubidium vapor laser pumped by a 5-bar laser diode stack.
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- Optical Engineering, 2014, v. 53, n. 11, p. 1, doi. 10.1117/1.OE.53.11.116113
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A comparative study on thermal lensing characteristics of low (∼500 °C) and high (∼1500 °C) temperature variants of copper vapor laser.
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- Optical Engineering, 2011, v. 50, n. 8, p. 084202, doi. 10.1117/1.3609799
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Influence of buffer gas pressure on the spectral width of the 510.6-nm line of an atomic copper vapor laser.
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- Optical Engineering, 2009, v. 48, n. 9, p. 094201-1, doi. 10.1117/1.3216574
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Local Crystallization of Lithium-Niobium-Silicate Glass by Copper-Vapor Laser Beam.
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- Glass & Ceramics, 2015, v. 72, n. 5/6, p. 194, doi. 10.1007/s10717-015-9754-y
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Copper-Vapor Laser Induced Local Crystallization of Glasses in the System LiO-BO-GeO.
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- Glass & Ceramics, 2015, v. 72, n. 5/6, p. 153, doi. 10.1007/s10717-015-9745-z
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Thermal Cleavage of Optical Glass by Strontium-Vapor Laser Radiation.
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- Glass & Ceramics, 2015, v. 71, n. 11/12, p. 379, doi. 10.1007/s10717-015-9692-8
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Local crystallization of glasses aided by copper vapor laser.
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- Glass & Ceramics, 2013, v. 70, n. 3/4, p. 130, doi. 10.1007/s10717-013-9525-6
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KEYHOLE FORMATION DURING LASER WELDING.
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- Annals of DAAAM & Proceedings, 2010, p. 1087
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On the optimization of laser power, efficiency and impedance matching for a copper vapor laser.
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- Microwave & Optical Technology Letters, 2000, v. 27, n. 5, p. 339, doi. 10.1002/1098-2760(20001205)27:5<339::AID-MOP15>3.0.CO;2-2
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An optimal design for reducing the “black center” for a copper-vapor laser by using a genetic algorithm.
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- Microwave & Optical Technology Letters, 2000, v. 25, n. 2, p. 113, doi. 10.1002/(SICI)1098-2760(20000420)25:2<113::AID-MOP9>3.0.CO;2-J
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Optimization of LC circuit parameters for obtaining maximum output of a copper vapor laser by a genetic algorithm.
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- Microwave & Optical Technology Letters, 1999, v. 22, n. 5, p. 343, doi. 10.1002/(SICI)1098-2760(19990905)22:5<343::AID-MOP15>3.0.CO;2-2
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Optimization of the temperature profile of a high-powered strontium bromide laser.
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- Electrical Engineering, 2018, v. 100, n. 3, p. 1537, doi. 10.1007/s00202-017-0631-2
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Copper vapor laser pumped by pulse-periodic high-frequency discharge.
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- High Temperature, 2017, v. 55, n. 5, p. 678, doi. 10.1134/S0018151X17050030
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Investigation of the characteristics of a colloidal solution and its solid phase obtained through ablation of zinc in water by high-power radiation from a copper vapor laser.
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- High Temperature, 2011, v. 49, n. 5, p. 679, doi. 10.1134/S0018151X11050099
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Automation of a Research Facility for Atomic Vapor Laser Isotope Separation.
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- Instruments & Experimental Techniques, 2018, v. 61, n. 4, p. 548, doi. 10.1134/S0020441218040048
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A power supply for a copper bromide vapor laser.
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- Instruments & Experimental Techniques, 2016, v. 59, n. 3, p. 381, doi. 10.1134/S0020441216030118
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Instability of thyratron operation in power supply units of metal-vapor lasers.
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- Instruments & Experimental Techniques, 2015, v. 58, n. 1, p. 59, doi. 10.1134/S0020441215010224
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A reversible HBr source for a copper bromide vapor laser.
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- Instruments & Experimental Techniques, 2013, v. 56, n. 3, p. 349, doi. 10.1134/S0020441213020139
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Magnetotransistor generator for powering a copper vapor laser.
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- Instruments & Experimental Techniques, 2006, v. 49, n. 1, p. 80, doi. 10.1134/S002044120601009X
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Kinetics of the Active Medium of a Copper Vapor Brightness Amplifier.
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- Russian Physics Journal, 2018, v. 60, n. 11, p. 1987, doi. 10.1007/s11182-018-1312-y
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Study of the Relaxation of Metastable 6p[sup 3][sup 2]D[sup 0][sub 3/2] States of Bismuth Atoms in a Bismuth-Vapor Laser.
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- Optics & Spectroscopy, 2001, v. 90, n. 6, p. 811, doi. 10.1134/1.1380772
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Efficiency of Pumping of the Active Medium of Metal Vapor Lasers: Gas-Discharge Tubes with Electrodes in the Hot Zone of the Discharge Channel.
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- Russian Physics Journal, 2016, v. 59, n. 6, p. 809, doi. 10.1007/s11182-016-0840-6
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On a Mechanism for Limiting the Frequency and Energy Characteristics of Lasers on Self-terminating Transitions of Metal Atoms.
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- Russian Physics Journal, 2016, v. 58, n. 12, p. 1782, doi. 10.1007/s11182-016-0717-8
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Low Current Discharge Copper Vapor Laser.
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- Russian Physics Journal, 2016, v. 58, n. 9, p. 1278, doi. 10.1007/s11182-016-0643-9
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Pulsed-Periodic Generation of Laser on SR I and SR II Transitions With High Gain Under Conditions of Ionization and Recombination Plasma Inhomogeneity.
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- Russian Physics Journal, 2014, v. 56, n. 11, p. 1281, doi. 10.1007/s11182-014-0173-2
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Perspectives on Development of Collisional Metal Vapor Lasers With Optical Pumping.
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- Russian Physics Journal, 2014, v. 56, n. 11, p. 1230, doi. 10.1007/s11182-014-0166-1
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Formation of a high-frequency discharge in the active metal vapor laser medium.
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- Russian Physics Journal, 2013, v. 56, n. 2, p. 169, doi. 10.1007/s11182-013-0013-9
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Amplifying characteristics of the active unit of a copper chloride laser with a built-in reactor.
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- Russian Physics Journal, 2013, v. 55, n. 10, p. 1152, doi. 10.1007/s11182-013-9937-3
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Influence of the electrophysical processes in the discharge circuit on the energy characteristics of a copper vapor laser.
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- Russian Physics Journal, 2013, v. 55, n. 9, p. 1080, doi. 10.1007/s11182-013-9925-7
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A multiple-wavelength self-terminating strontium vapor laser for remote gas analysis of the atmosphere.
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- Russian Physics Journal, 2012, v. 55, n. 4, p. 449, doi. 10.1007/s11182-012-9832-3
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Spatiotemporal spectroscopic diagnostics of a pulse-periodic strontium vapor laser.
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- Russian Physics Journal, 2011, v. 54, n. 3, p. 323, doi. 10.1007/s11182-011-9618-z
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Reduction of copper bromide molecules in the plasma of a CuBr laser during the interpulse period.
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- Russian Physics Journal, 2011, v. 54, n. 2, p. 221, doi. 10.1007/s11182-011-9600-9
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The strontium-vapor laser pumping efficiency under running-wave excitation.
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- Russian Physics Journal, 2008, v. 51, n. 12, p. 1334, doi. 10.1007/s11182-009-9186-7
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Pulsed-periodic laser on RM helium and strontium transitions.
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- Russian Physics Journal, 2008, v. 51, n. 1, p. 5, doi. 10.1007/s11182-008-9031-4
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Nonlinear Frequency Conversion of Copper Vapor Laser Radiation Using Convergent and Parallel Laser Beams.
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- Technical Physics, 2000, v. 45, n. 4, p. 467, doi. 10.1134/1.1259656
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Limiting pulse repetition rate in copper vapor lasers.
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- Technical Physics, 1997, v. 42, n. 5, p. 504, doi. 10.1134/1.1258660
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Design and physical features of inductive coaxial copper vapor lasers.
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- Plasma Physics Reports, 2016, v. 42, n. 11, p. 1057, doi. 10.1134/S1063780X16110027
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Quasi-optics near the plasma frequency of a CuBr vapor laser.
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- Plasma Physics Reports, 2008, v. 34, n. 3, p. 189, doi. 10.1134/S1063780X08030033
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Effects of laser induced metal vapour on arc plasma during laser arc double sided welding of 5A06 aluminium alloy.
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- Science & Technology of Welding & Joining, 2012, v. 17, n. 1, p. 69, doi. 10.1179/1362171811Y.0000000078
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