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Publications in Math-Net.Ru |
Citations |
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2026 |
| 1. |
D. A. Gavrilova, M. A. Gavrilova, S. K. Evstropiev, “Photocatalytic properties of MgO–ZnO composites modified with Cu and Mn ions”, Optics and Spectroscopy, 134:3 (2026), 247–255 |
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2024 |
| 2. |
D. A. Gavrilova, M. A. Gavrilova, L. L. Khomutinnikova, S. K. Evstropiev, I. K. Meshkovskiĭ, “Optimization of chemical composition and structure of the photocatalyst of ZnO–SnO$_2$–Fe$_2$O$_3$ system”, Optics and Spectroscopy, 132:4 (2024), 413–420 |
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2023 |
| 3. |
L. L. Khomutinnikova, I. K. Meshkovskiĭ, S. K. Evstropiev, M. Yu. Litvinov, E. P. Bykov, S. A. Plyastsov, “Method of methane detection by a fiber-optic sensor using a photocatalytic nanocomposite ZnO–SnO$_2$–Fe$_2$O$_3$”, Optics and Spectroscopy, 131:3 (2023), 427–432 |
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| 4. |
A. Tinku, A. A. Shelemanov, S. K. Evstropiev, “Photocatalytic and adsorption properties of ZnO/ZnAl$_2$O$_4$/Cu nanocomposites”, Optics and Spectroscopy, 131:3 (2023), 412–418 |
| 5. |
L. L. Khomutinnikova, E. P. Bykov, I. K. Meshkovskiĭ, S. K. Evstropiev, K. V. Dukelskii, S. A. Plyastsov, “Remote detection of gaseous hydrocarbons by a fiber-optic sensor using an oxide photocatalyst”, Kvantovaya Elektronika, 53:10 (2023), 802–806 [Bull. Lebedev Physics Institute, 50:suppl. 13 (2023), S1476–S1483] |
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2022 |
| 6. |
A. A. Tinku, A. A. Shelemanov, S. K. Evstropiev, N. V. Nikonorov, A. V. Karavaeva, V. M. Kiselev, “Photoactive Cu-Containing ZnO–ZnAl$_2$O$_4$ nanocomposites”, Optics and Spectroscopy, 130:10 (2022), 1571–1577 |
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| 7. |
D. V. Bulyga, S. K. Evstropiev, “Kinetics of adsorption and photocatalytic decomposition of a diazo dye by nanocomposite ZnO–MgO”, Optics and Spectroscopy, 130:9 (2022), 1455–1463 |
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2021 |
| 8. |
A. A. Shelemanov, R. K. Nuryev, S. K. Evstropiev, V. M. Kiselev, N. V. Nikonorov, “The influence of polyvinylpyrrolidone on the structure and optical properties of ZnO–MgO nanocomposites synthesized by the polymer–salt method”, Optics and Spectroscopy, 129:9 (2021), 1176–1181 ; Optics and Spectroscopy, 129:12 (2021), 1300–1305 |
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| 9. |
D. V. Bulyga, S. K. Evstropiev, N. K. Kuz'menko, R. V. Sadovnichii, N. V. Nikonorov, “Polymer-salt stnthesis of Yb:YAG nanopowders and analysis of their structure and luminescent properties”, Optics and Spectroscopy, 129:8 (2021), 1068–1073 ; Optics and Spectroscopy, 129:10 (2021), 1068–1073 |
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| 10. |
A. S. Matrosova, N. K. Kuz'menko, S. K. Evstropiev, V. A. Aseev, D. P. Danilovich, N. V. Nikonorov, A. I. Ignatiev, V. V. Demidov, K. V. Dukelskii, “Polymer-salt synthesis of nanoscale Gd$_{2}$O$_{3}$:Nd$^{3+}$ phosphors and characterization of their basic properties”, Optics and Spectroscopy, 129:5 (2021), 650–657 ; Optics and Spectroscopy, 129:6 (2021), 662–669 |
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| 11. |
V. M. Volynkin, D. P. Danilovich, S. K. Evstropiev, K. V. Dukelskii, K. Yu. Senchik, R. V. Sadovnichii, V. M. Kiselev, I. V. Bagrov, A. S. Saratovskii, N. V. Nikonorov, P. V. Bezborodkin, “Synthesis and investigation of the structure and properties of photoactive ZnO–SnO$_2$–Ag(AgCl) nanomaterials for medicine and environmental applications”, Optics and Spectroscopy, 129:5 (2021), 642–649 ; Optics and Spectroscopy, 129:7 (2021), 746–753 |
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2020 |
| 12. |
S. K. Evstropiev, N. V. Nikonorov, A. S. Saratovskii, “Photodestruction of polyvinylpyrrolidone in aqueous solutions of metal nitrates”, Optics and Spectroscopy, 128:11 (2020), 1740–1746 ; Optics and Spectroscopy, 128:11 (2020), 1873–1879 |
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| 13. |
I. V. Bagrov, V. M. Kiselev, S. K. Evstropiev, A. S. Saratovskii, V. V. Demidov, A. S. Matrosova, “Singlet oxygen generation in microcapillary optical elements with photoactive coatings”, Optics and Spectroscopy, 128:2 (2020), 218–223 ; Optics and Spectroscopy, 128:2 (2020), 214–219 |
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2019 |
| 14. |
A. S. Matrosova, S. K. Evstropiev, L. Yu. Mironov, N. V. Nikonorov, A. V. Komarov, V. V. Demidov, “Study of fiber optic elements based on a photoactive polymer composition for sensor applications”, Optics and Spectroscopy, 127:4 (2019), 692–695 ; Optics and Spectroscopy, 127:4 (2019), 746–749 |
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| 15. |
N. A. Volkova, S. K. Evstropiev, N. V. Nikonorov, K. S. Evstropyev, “Specific features of interactions of polyvinylpyrrolidone molecules with zinc and silver ions in aqueous solutions according to IR spectroscopy data”, Optics and Spectroscopy, 127:4 (2019), 687–690 ; Optics and Spectroscopy, 127:4 (2019), 738–741 |
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| 16. |
S. K. Evstropiev, N. V. Nikonorov, V. M. Kiselev, A. S. Saratovskii, E. V. Kolobkova, “Transparent photoactive ZnO–MgO–Ag$_{2}$O films on glasses”, Optics and Spectroscopy, 127:2 (2019), 292–299 ; Optics and Spectroscopy, 127:2 (2019), 314–321 |
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| 17. |
S. K. Evstropiev, L. L. Lesnykh, N. V. Nikonorov, A. V. Karavaeva, E. V. Kolobkova, K. V. Oreshkina, L. Yu. Mironov, I. V. Bagrov, “Transparent ZnO–SnO$_{2}$ photocatalytic nanocoatings prepared by the polymer–salt method”, Optics and Spectroscopy, 126:4 (2019), 515–522 ; Optics and Spectroscopy, 126:4 (2019), 431–438 |
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| 18. |
S. K. Evstropiev, V. A. Aseev, V. V. Demidov, N. K. Kuz'menko, A. S. Matrosova, A. V. Khokhlov, A. V. Komarov, K. V. Dukel'skii, N. V. Nikonorov, K. V. Oreshkina, “Silica fibres activated by YAG : Nd<sup>3+</sup> nanocrystals”, Kvantovaya Elektronika, 49:12 (2019), 1145–1148 [Quantum Electron., 49:12 (2019), 1145–1148 ] |
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2018 |
| 19. |
S. K. Evstropiev, A. S. Kulagina, K. S. Evstropyev, E. V. Kolobkova, N. V. Nikonorov, I. P. Soshnikov, K. V. Oreshkina, A. I. Khrebtov, “The influence of polyvinylpyrrolidone molecular weight on the structure and the spectral and nonlinear optical properties of composite materials with CdS/ZnS nanoparticles”, Optics and Spectroscopy, 125:5 (2018), 608–614 ; Optics and Spectroscopy, 125:5 (2018), 640–645 |
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| 20. |
O. V. Istomina, S. K. Evstropiev, E. V. Kolobkova, A. O. Trofimov, “Photolysis of diazo dye in solutions and films containing zinc and silver oxides”, Optics and Spectroscopy, 124:6 (2018), 742–747 ; Optics and Spectroscopy, 124:6 (2018), 774–778 |
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| 21. |
N. A. Volkova, S. K. Evstropiev, O. V. Istomina, E. V. Kolobkova, “Photolysis of diazo dye in aqueous solutions of metal nitrates”, Optics and Spectroscopy, 124:4 (2018), 472–476 ; Optics and Spectroscopy, 124:4 (2018), 489–493 |
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| 22. |
A. S. Kulagina, S. K. Evstropiev, N. N. Rosanov, V. V. Vlasov, “Nonlinear optical properties of CdS/ZnS quantum dots in a high-molecular-weight polyvinylpyrrolidone matrix”, Fizika i Tekhnika Poluprovodnikov, 52:8 (2018), 865–872 ; Semiconductors, 52:8 (2018), 997–1003 |
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2017 |
| 23. |
S. K. Evstropiev, V. M. Volynkin, V. M. Kiselev, K. V. Dukel'skii, K. S. Evstropyev, V. V. Demidov, Yu. A. Gatchin, “Transparent photocatalytic coatings on the surface of the tips of medical fibre-optic bundles”, Kvantovaya Elektronika, 47:12 (2017), 1125–1127 [Quantum Electron., 47:12 (2017), 1125–1127 ] |
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2016 |
| 24. |
S. K. Evstropiev, I. P. Soshnikov, A. I. Khrebtov, “The formation of ZnO-based coatings from solutions containing high-molecular polyvinylpyrrolidone”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 42:9 (2016), 49–55 ; Tech. Phys. Lett., 42:5 (2016), 468–470 |
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2015 |
| 25. |
I. A. Bagrov, V. V. Danilov, S. K. Evstropiev, V. M. Kiselev, I. M. Kislyakov, A. S. Panfutova, A. I. Khrebtov, “Photoinduced variation of the luminescent properties of PbS nanoparticle suspensions stabilized by polyvinylpyrrolidone”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 41:2 (2015), 25–33 ; Tech. Phys. Lett., 41:1 (2015), 65–68 |
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1990 |
| 26. |
S. K. Evstropiev, L. V. Muchina, G. T. Petrovskiĭ, V. D. Khalilev, “Probable new applications of glasses for integrated optics”, Dokl. Akad. Nauk SSSR, 315:2 (1990), 359–363 |
| 27. |
L. B. Glebov, S. K. Evstropiev, N. V. Nikonorov, G. T. Petrovskiĭ, E. E. Shalamaiko, L. K. Shmatok, “Polarization selection of radiation in planar waveguides on glass”, Dokl. Akad. Nauk SSSR, 312:2 (1990), 358–360 |
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2022 |
| 28. |
S. K. Evstropiev, V. V. Demidov, D. V. Bulyga, R. V. Sadovnichii, G. A. Pchelkin, D. N. Shurupov, Yu. F. Podrukhin, A. S. Matrosova, N. V. Nikonorov, K. V. Dukelskii, “YAG : R<sup>3+</sup> (R = Ce, Dy, Yb) nanophosphor-based luminescent fibre-optic sensors for temperature measurements in the range 20–500 °C”, Kvantovaya Elektronika, 52:1 (2022), 94–99 [Quantum Electron., 52:1 (2022), 94–99 ] |
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