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On Poincaré–Birkhoff–Witt basis of the quantum general linear superalgebra.
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- Theoretical & Mathematical Physics, 2023, v. 217, n. 3, p. 1938, doi. 10.1134/S0040577923120115
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Khoroshkin–Tolstoy approach to quantum superalgebras.
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- Theoretical & Mathematical Physics, 2023, v. 215, n. 1, p. 560, doi. 10.1134/S0040577923040074
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-weights and factorization of transfer operators.
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- Theoretical & Mathematical Physics, 2021, v. 208, n. 2, p. 1116, doi. 10.1134/S0040577921080092
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A possible combinatorial point for the XYZ spin chain.
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- Theoretical & Mathematical Physics, 2010, v. 164, n. 2, p. 977, doi. 10.1007/s11232-010-0078-3
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Three-coloring statistical model with domain wall boundary conditions: Functional equations.
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- Theoretical & Mathematical Physics, 2009, v. 161, n. 1, p. 1325, doi. 10.1007/s11232-009-0119-y
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ℤ-graded loop Lie algebras, loop groups, and Toda equations.
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- Theoretical & Mathematical Physics, 2008, v. 154, n. 3, p. 385, doi. 10.1007/s11232-008-0034-7
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Enumerations of half-turn-symmetric alternating-sign matrices of odd order.
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- Theoretical & Mathematical Physics, 2006, v. 148, n. 3, p. 1174, doi. 10.1007/s11232-006-0111-8
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Refined Enumerations of Some Symmetry Classes of Alternating-Sign Matrices.
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- Theoretical & Mathematical Physics, 2004, v. 141, n. 3, p. 1609, doi. 10.1023/B:TAMP.0000049757.07267.9d
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Combinatorial Nature of the Ground-State Vector of the O(1) Loop Model.
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- Theoretical & Mathematical Physics, 2004, v. 138, n. 3, p. 333, doi. 10.1023/B:TAMP.0000018450.36514.d7
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On the importance of engineering geological observation, control and investigation during construction and operation of hydroelectric stations.
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- Bulletin of Engineering Geology & the Environment, 1979, v. 20, n. 1, p. 245, doi. 10.1007/BF02591294
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Experimental Test of the Principle of Microscopic Reversibility in Photoluminescence Decay Kinetics.
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- JETP Letters, 2019, v. 110, n. 5, p. 323, doi. 10.1134/S0021364019170107
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Investigation of Ligand Exchange in Thin Films of PbS Colloidal Quantum Dots with FTIR-Spectroscopy.
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- Journal of Communications Technology & Electronics, 2023, v. 68, p. S184, doi. 10.1134/S1064226923140152
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Photoluminescence spectra of n-ZnO/ p-GaN:(Er + Zn) and p-AlGaN:(Er + Zn) heterostructures.
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- Semiconductors, 2008, v. 42, n. 7, p. 766, doi. 10.1134/S1063782608070038
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Nitrite Contamination of the Moskva River: Causes and Effects.
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- Water Resources, 2001, v. 28, n. 3, p. 324, doi. 10.1023/A:1010409009477
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Synthesis of Gold Nanorods in a Binary Mixture of Cationic Surfactants.
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- Colloid Journal, 2022, v. 84, n. 1, p. 100, doi. 10.1134/S1061933X22010136
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Statistical Thermodynamics of Water-in-Oil Microemulsions Stabilized with an Ionic Surfactant.
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- Colloid Journal, 2019, v. 81, n. 4, p. 337, doi. 10.1134/S1061933X19040124
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The Effect of Stabilizing Ligands on the Interaction between Colloidal Quantum Dots of Cadmium Selenide. Computer Simulation.
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- Colloid Journal, 2018, v. 80, n. 6, p. 676, doi. 10.1134/S1061933X18060108
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Computer Simulation of the Adsorption of meso-Tetra(3-Pyridyl)porphyrin Dye on the Surface of Colloidal CdSe Quantum Dots.
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- Colloid Journal, 2018, v. 80, n. 5, p. 527, doi. 10.1134/S1061933X18050125
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On Stabilization of Colloidal Quantum Dots of Cadmium Selenide in the Presence of Octadecylphosphonic Acid.
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- Colloid Journal, 2018, v. 80, n. 1, p. 73, doi. 10.1134/S1061933X18010088
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Molecular dynamics study of micellization thermodynamics in AOT/hexane system.
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- Colloid Journal, 2017, v. 79, n. 1, p. 76, doi. 10.1134/S1061933X17010094
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Molecular dynamics simulation of the structure of mixed ligand shells stabilizing cadmium selenide nanoparticle surfaces with different curvatures.
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- Colloid Journal, 2016, v. 78, n. 5, p. 641, doi. 10.1134/S1061933X16050112
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Computer simulation of ligand shells of colloidal cadmium selenide quantum dots.
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- Colloid Journal, 2016, v. 78, n. 1, p. 83, doi. 10.1134/S1061933X16010129
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The effects of a solvent and a ligand shell on interaction of CdSe quantum dots: Molecular dynamics simulation.
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- Colloid Journal, 2015, v. 77, n. 6, p. 727, doi. 10.1134/S1061933X15060125
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Hydrophilization of CdSe quantum dots with surfactants.
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- Colloid Journal, 2013, v. 75, n. 4, p. 427, doi. 10.1134/S1061933X13040121
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Molecular dynamics simulation of reverse micelles: A search for the most efficient strategy.
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- Colloid Journal, 2013, v. 75, n. 2, p. 191, doi. 10.1134/S1061933X13010080
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Gold clusters and nanoparticles in reverse micelles formed by tritons X-100, X-114, and X-45.
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- Colloid Journal, 2011, v. 73, n. 3, p. 384, doi. 10.1134/S1061933X1102013X
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Synthesis and Stabilization of Gold Nanoparticles in Reverse Micelles of Aerosol OT and Triton X-100.
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- Colloid Journal, 2005, v. 67, n. 4, p. 485, doi. 10.1007/s10595-005-0122-4
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Specific Features of the Preparation of AgI Nanocrystals in Reverse Micelles of Aerosol OT.
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- Colloid Journal, 2004, v. 66, n. 4, p. 477, doi. 10.1023/B:COLL.0000037456.72526.7f
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Stabilization of the AgI Nanocrystal Size with Thiols in Reverse Micelles.
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- Colloid Journal, 2003, v. 65, n. 3, p. 370, doi. 10.1023/A:1024271226236
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Production of thick YBa[sub 2]Cu[sub 3]O[sub 7-δ] films on sapphire with a cerium oxide sublayer.
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- Technical Physics, 1999, v. 44, n. 9, p. 1119, doi. 10.1134/1.1259484
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Growth of YBa[sub 2]Cu[sub 3]O[sub 7-x] thin films on sapphire with a cerium-oxide sublayer.
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- Technical Physics, 1999, v. 44, n. 1, p. 85, doi. 10.1134/1.1259256
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Colloidal Quantum Dots: 2. Methods for the Synthesis of Colloidal Quantum Dots.
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- High Energy Chemistry, 2024, v. 58, p. S10, doi. 10.1134/S0018143924700152
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Colloidal Quantum Dots: 1. Colloidal Quantum Dots, a New Class of Luminophores.
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- High Energy Chemistry, 2024, v. 58, p. S4, doi. 10.1134/S001814392470019X
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Colloidal Quantum Dots: Introduction.
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- High Energy Chemistry, 2024, v. 58, p. S1, doi. 10.1134/S0018143924700188
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Colloidal Quantum Dots: 6. Nanoclusters of Colloidal Quantum Dots.
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- High Energy Chemistry, 2024, v. 58, p. S81, doi. 10.1134/S0018143924700218
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Colloidal Quantum Dots: 5. Luminescence Features of Colloidal Quantum Dots.
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- High Energy Chemistry, 2024, v. 58, p. S54, doi. 10.1134/S0018143924700164
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Colloidal Quantum Dots: 3. Molecular Dynamics Simulation of Quantum Dot Structure.
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- High Energy Chemistry, 2024, v. 58, p. S24, doi. 10.1134/S0018143924700176
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Colloidal Quantum Dots: 4. Colloidal Quantum Dots and Basic Photoluminescence Laws.
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- High Energy Chemistry, 2024, v. 58, p. S39, doi. 10.1134/S0018143924700206
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Introductory Paper.
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- High Energy Chemistry, 2023, v. 57, p. S385, doi. 10.1134/S0018143923090138
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Study of Photoelectrophysical Characteristics of IR Photodetector Based on HgTe Colloidal Quantum Dots.
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- High Energy Chemistry, 2022, v. 56, n. 2, p. 91, doi. 10.1134/S0018143922020035
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Plasmonic Antennas Based on Silica Shell-Coated Gold Nanorods for Near-IR Photodetectors.
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- High Energy Chemistry, 2021, v. 55, n. 2, p. 134, doi. 10.1134/S0018143921020041
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- Article
Fluorescence Quenching of 3,5-Diphenyl-8-CF3-BODIPY Luminophores Bearing Aminophenyl Substituents by Aromatic Molecules.
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- High Energy Chemistry, 2021, v. 55, n. 3, p. 179, doi. 10.1134/S0018143921030024
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Förster Resonance Energy Transfer in Aggregates of CdSe Colloidal Quantum Dots with Adsorbed meso-Tetra(3-pyridyl)porphyrin.
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- High Energy Chemistry, 2020, v. 54, n. 5, p. 316, doi. 10.1134/S0018143920050124
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Effect of Surfactants on Shape of Gold Nanoparticles.
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- High Energy Chemistry, 2020, v. 54, n. 5, p. 308, doi. 10.1134/S0018143920050148
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- Article
A New Approach to the Synthesis of Lead Sulfide Colloidal Quantum Dots in a Mixture of Oleylamine and Oleic Acid.
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- High Energy Chemistry, 2020, v. 54, n. 3, p. 183, doi. 10.1134/S0018143920030133
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Study of Electrophotophysical Characteristics of IR Photodetectors Based on PbS Colloidal Quantum Dots.
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- High Energy Chemistry, 2020, v. 54, n. 1, p. 36, doi. 10.1134/S0018143920010038
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- Article
Nonradiative Energy Transfer in "Colloidal Quantum Dot Nanocluster–Dye" Hybrid Nanostructures: Computer Experiment.
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- High Energy Chemistry, 2020, v. 54, n. 1, p. 28, doi. 10.1134/S0018143920010105
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- Article
Computer Simulation of Förster Resonance Energy Transfer in Nanoclusters of Cadmium Selenide Colloidal Quantum Dots.
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- High Energy Chemistry, 2019, v. 53, n. 2, p. 125, doi. 10.1134/S0018143919020127
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- Article
Influence of Dithiols on Fluorescence Blinking of Colloidal Quantum Dots InP@ZnS.
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- High Energy Chemistry, 2019, v. 53, n. 1, p. 26, doi. 10.1134/S0018143919080010
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Influence of Dithiols on Luminescent Properties of Colloidal InP@ZnS Quantum Dots.
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- High Energy Chemistry, 2018, v. 52, n. 6, p. 498, doi. 10.1134/S0018143918060140
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