{"id":518,"date":"2019-02-08T15:32:49","date_gmt":"2019-02-08T12:32:49","guid":{"rendered":"http:\/\/www.kaf81mephi.ru\/?page_id=518"},"modified":"2023-03-15T12:37:01","modified_gmt":"2023-03-15T09:37:01","slug":"%d1%81%d1%82%d0%b0%d1%82%d1%8c%d0%b8","status":"publish","type":"page","link":"http:\/\/www.kaf81mephi.ru\/?page_id=518","title":{"rendered":"\u0421\u0442\u0430\u0442\u044c\u0438"},"content":{"rendered":"<h3>\u041f\u0443\u0431\u043b\u0438\u043a\u0430\u0446\u0438\u0438 \u0441\u043e\u0442\u0440\u0443\u0434\u043d\u0438\u043a\u043e\u0432 \u043a\u0430\u0444\u0435\u0434\u0440\u044b, \u0446\u0438\u0442\u0438\u0440\u0443\u0435\u043c\u044b\u0435 \u0432 \u043d\u0430\u0443\u0447\u043d\u044b\u0445 \u0431\u0430\u0437\u0430\u0445 Scopus \u0438\/\u0438\u043b\u0438 Web of science<\/h3>\n<h4>2022 \u0433\u043e\u0434<\/h4>\n<p>[1]\u00a0 \u00a0 \u00a0<span class=\"Table_0020Grid__Char\">Kostarev V.A., Kotkovskii G.E., Chistyakov A.A., <\/span><span class=\"Table_0020Grid__Char\">Akmalov A.E. <\/span><span class=\"Table_0020Grid__Char\">Detection of explosives in vapor phase by field asymmetric ion mobility <\/span><span class=\"Table_0020Grid__Char\">spectrometry with dopant-assisted laser ionization. Talanta, 2022, Volume 245,123414,Q1.<\/span><\/p>\n<p>[2]\u00a0 \u00a0 \u00a0<span class=\"Table_0020Grid__Char\">Kostarev V.A., Kotkovskii G.E., Chistyakov A.A., <\/span><span class=\"Table_0020Grid__Char\">Akmalov A.E.<\/span> Use of dopants for detection of vapors of explosives by laser field asymmetric ion mobility spectrometer \/\/ Proceedings of SPIE &#8211; The International Society for Optical Engineering, 2022\u00a0<span class=\"text-muted\">Vol.\u00a012275<\/span><\/p>\n<p>[3]\u00a0 \u00a0 <span class=\"Table_0020Grid__Char\">Kotkovskii G.E., Chistyakov A.A.<\/span> Stationary two-unit detector of explosives with a light detector module based on traditional ion mobility spectrometry\u00a0\/\/ Proceedings of SPIE &#8211; The International Society for Optical Engineering, 2022\u00a0<span class=\"text-muted\">Vol. 12275<\/span><\/p>\n<p>[4]\u00a0 \u00a0 T. A. Kharinoeva,\u00a0I. L. Martynov,\u00a0E. V. Osipov,\u00a0G. E. Kotkovskii,\u00a0<span tabindex=\"0\">A. A. Chistyakov <\/span>Photostability of luminophores sensitive to vapors of nitroaromatic compounds in a porous silicon microcavity\u00a0\/\/ Proceedings of SPIE &#8211; The International Society for Optical Engineering, 2022\u00a0<span class=\"text-muted\">Vol.\u00a012275<\/span><\/p>\n<p>[5]\u00a0 \u00a0 <span tabindex=\"0\">A. E. Akmalov<\/span>,\u00a0G. E. Kotkovskii,\u00a0K. I. Kozlovskii,\u00a0E. M. Maksimov,\u00a0I. L. Martynov,\u00a0E. V. Osipov,\u00a0A. A. Plekhanov,\u00a0Yu. A. Kuzishchin,\u00a0<span tabindex=\"0\">A. A. Chistyakov <\/span>Detection of objects hidden behind various barriers using the THz radiovision method\u00a0\/\/ Proceedings of SPIE &#8211; The International Society for Optical Engineering, 2022\u00a0<span class=\"text-muted\">Vol.\u00a012275<\/span><\/p>\n<p>[6]\u00a0 \u00a0 <span class=\"authors-info\"><span class=\"blue-tooltip\">T. A. Kharinoeva<\/span>;\u00a0<\/span><span class=\"authors-info\"><span class=\"blue-tooltip\">O. K. Malyshev<\/span>;\u00a0<\/span><span class=\"authors-info\"><span class=\"blue-tooltip\">I. L. Martynov<\/span>;\u00a0<\/span><span class=\"authors-info\"><span class=\"blue-tooltip\">A. A. Chistyakov <\/span><\/span>The excitation modes of porous silicon microcavities with an embedded conjugated polymer for detecting vapors of nitroaromatic compounds \/\/ 2022 International Conference Laser Optics, ICLO 2022 &#8211; Proceedingss, 2022<\/p>\n<h4>2021 \u0433\u043e\u0434<\/h4>\n<p>[1]\u00a0 \u00a0 \u00a0 \u00a0 Martynov I. L., Chistyakov A.A., Nikitenko V.R., Tameev A. R., Saunina A. Yu, Zvaigzne M. A., Aleksandrov \u0410. E. PbS Quantum Dots with Inorganic Ligands: Physical Modeling of the Charge and Excitation Transport in Photovoltaic Cells. Journal of Physical Chemistry C, 2021, \u0422\u043e\u043c 125, \u0412\u044b\u043f\u0443\u0441\u043a 11, Q1. DOI10.1021\/acs.jpcc.0c10392.<\/p>\n<p>[2]\u00a0 \u00a0 \u00a0 \u00a0 Martynov I. L., Osipov E.V., Kuzishchin Y. A., Kotkovskii G.E., Chistyakov A.A. Akmalov A.E., Pashkevich A. A., Tkachuk A. P., Verdiev B. I., Alatirev A. G. Photon counting mode for advanced real-time detection of bioaerosols. Proceedings of SPIE &#8211; The International Society for Optical Engineering, 2021, Vol. 11869, Q4. DOI10.1117\/12.2600476.<\/p>\n<p>[3]\u00a0 \u00a0 \u00a0 \u00a0 Akmalov A. E., Chistyakov, A. A., Kotkovskii G.E.,\u00a0Kostarev V. A., Lavrinenko K.N. Preconcentration of vapors of low-volatile explosives for ion mobility spectrometry. Proceedings of SPIE &#8211; The International Society for Optical Engineering, 2021, Vol. 11869, Q4. DOI10.1117\/12.2597962.<\/p>\n<p>[4]\u00a0 \u00a0 \u00a0 \u00a0 \u00a0Martynov I. L., Osipov E.V., Kuzishchin Y. A., Kotkovskii G.E., Chistyakov A.A., Akmalov A.E., Kozlovskii K.I., Maksimov E.M., Plekhanov A.A. Detection of trace mm- And sub-mm particles of organic substances using THz imaging with spectral resolution. Proceedings of SPIE &#8211; The International Society for Optical Engineering, 2021, Vol. 11869, Q4. DOI10.1117\/12.2599920.<\/p>\n<p>[5]\u00a0 \u00a0 \u00a0 \u00a0 \u00a0 Akmalov A. E., Chistyakov, A. A., Kotkovskii G.E.,\u00a0Kostarev V. A., Belenok S. K. Portable aerosol sampler with liquid phase for collection of biopathogens at subzero temperatures. Proceedings of SPIE &#8211; The International Society for Optical Engineering, 2021, Vol. 11869, Q4. DOI10.1117\/12.2597974.<\/p>\n<p>[6]\u00a0 \u00a0 \u00a0 \u00a0Martynov I. L., Osipov E.V., Chistyakov A.A., Gaponenko N.V., Kholov P.A., Karnilava, Yu. D., Lashkovskaya E.I., Labunov V.A., Kargin N.I., Raichenok T.F., Tikhomirov S.A. Sol\u2013Gel Derived Photonic Crystals BaTiO3\/SiO2. Semiconductors, 2022, Q4 \u0422\u043e\u043c 55, \u0412\u044b\u043f\u0443\u0441\u043a 11, \u0441\u0442\u0440. 831 &#8211; 834. DOI10.1134\/S1063782621100110.<\/p>\n<h4>2020 \u0433\u043e\u0434<\/h4>\n<p>[1]\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 A.M. Buryakov, M.S. Ivanov, S.A. Nomoev, D.I. Khusyainov, E.D. Mishina, V.A. Khomchenko, I.S. Vasil\u2019evskii, A.N. Vinichenko, K.I. Kozlovskii, A.A. Chistyakov, J.A. Paix\u00e3o. An advanced approach to control the electro-optical properties of LT-GaAs-based terahertz photoconductive antenna. Mater. Res. Bull. 122 (2020) 110688. doi:10.1016\/j.materresbull.2019.110688.<\/p>\n<p>[2]\u00a0 \u00a0 \u00a0 \u00a0 \u00a0<span class=\"anchorText\">Kostarev, V.A.<\/span>,\u00a0<span class=\"anchorText\">Kotkovskii, G.E.<\/span>,\u00a0<span class=\"anchorText\">Chistyakov, A.A.<\/span>, Akmalov, A.E.\u00a0Enhancement of characteristics of field asymmetric ion mobility spectrometer with laser ionization for detection of explosives in vapor phase.\u00a0Chemosensors\u00a0Volume 8, Issue 4, December 2020, 91, Pages 1-12\u00a0doi:10.3390\/chemosensors8040091<\/p>\n<p>[3]\u00a0 \u00a0 \u00a0 \u00a0 \u00a0 A. E. Akmalov,\u00a0G. E. Kotkovskii,\u00a0K. I. Kozlovskii,\u00a0E. M. Maksimov,\u00a0A. A. Plekhanov,\u00a0A. A. Chistyakov.\u00a0THz imaging with spectral resolution for identification of traces of explosives.\u00a0Proceedings of SPIE &#8211; The International Society for Optical Engineering Volume 11542, 2020, 115420O,\u00a0DOI:\u00a010.1117\/12.2573795.<\/p>\n<p>[4]\u00a0 \u00a0 \u00a0 \u00a0 \u00a0 Akmalov, A.E., Chistyakov, A.A., Kotkovskii, G.E., Kostarev, V.A., Kulintsov, A.V., Lavrinenko, K.N.\u00a0About impurities in cyclotrhylmethylentrinitramine and the possibility of detecting its vapor.\u00a0Proceedings of SPIE &#8211; The International Society for Optical Engineering\u00a0Volume 11542, 2020, 115420K,\u00a0DOI:\u00a010.1117\/12.2572772.<\/p>\n<p>[5]\u00a0 \u00a0 \u00a0 \u00a0 \u00a0 Akmalov, A.E., Belenok, S.K., Kadyrova, A., Kirillova, V., Kostarev, V.A., Kotkovskii, G.E., Chistyakov, A.A.\u00a0Portable aerosol collector with liquid circulation mounted on a drone.\u00a0Proceedings of SPIE &#8211; The International Society for Optical EngineeringVolume 11542, 2020, 115420J,\u00a0DOI:\u00a010.1117\/12.2572653.<\/p>\n<p>[6]\u00a0 \u00a0 \u00a0 \u00a0 \u00a0\u00a0<span class=\"anchorText\">Aleksandrov, A.E.<\/span>, Zvaigzne, M.A.,\u00a0Tameev, A.R.,\u00a0Chistyakov, A.A.\u00a0Photovoltaic Properties of Thin Films Based on a Composite of PbS Quantum Dots and a Fullerene Derivative: A Complex Ester of Butyric Acid.\u00a0Bulletin of the Russian Academy of Sciences: Physics<br \/>Volume 84, Issue 5, 1 May 2020, Pages 505-507.\u00a0DOI: 10.3103\/S1062873820050044<\/p>\n<p>[7]\u00a0 \u00a0 \u00a0 \u00a0 \u00a0 Dovzhenko D.,\u00a0Martynov I., Samokhvalov P., Osipov E.,\u00a0Lednev M.,\u00a0Chistyakov A., Karaulov A.,\u00a0Nabiev I.\u00a0Enhancement of spontaneous emission of semiconductor quantum dots inside one-dimensional porous silicon photonic crystals. Optics express. \u0422\u043e\u043c: 28 \u0412\u044b\u043f\u0443\u0441\u043a: 15 \u0421\u0442\u0440.: 22705-22717. DOI: 10.1364\/OE.401197<\/p>\n<p class=\"FR_field\">\u00a0<\/p>\n<h4>2019 \u0433\u043e\u0434<\/h4>\n<p>[1]\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 A. Akmalov, A.A. Chistyakov, G.E. Kotkovskii, V.A. Kostarev, Detection of vapors of explosives by field asymmetric ion mobility spectrometry method with laser ionization, in: H. Bouma, R.J. Stokes, Y. Yitzhaky, R. Prabhu (Eds.), Counterterrorism, Crime Fight. Forensics, Surveill. Technol. III, SPIE, 2019: p. 2. doi:10.1117\/12.2532321.<\/p>\n<p>[2]\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 A. Akmalov, A.A. Chistyakov, G.E. Kotkovskii, D. Turbin, Application of cyclone collector wit a recirculating liquid phase for concentrating microparticles of organic substances localized as traces on surfaces, in: H. Bouma, R.J. Stokes, Y. Yitzhaky, R. Prabhu (Eds.), Counterterrorism, Crime Fight. Forensics, Surveill. Technol. III, SPIE, 2019: p. 1. doi:10.1117\/12.2532328.<\/p>\n<p>[3]\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 A. Akmalov, G.E. Kotkovskii, S. Stolyarov, B. Verdiev, V. Gushchin, A. Tkachuk, A.A. Chistyakov, High-performance aerosol collector with liquid phase circulation and pre-concentration of particles, in: H. Bouma, R.J. Stokes, Y. Yitzhaky, R. Prabhu (Eds.), Counterterrorism, Crime Fight. Forensics, Surveill. Technol. III, SPIE, 2019: p. 4. doi:10.1117\/12.2532326.<\/p>\n<p>[4]\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 I.L. Martynov, E. V. Osipov, Y.A. Kuzishchin, G.E. Kotkovskii, E. V. Verbitskiy, A.A. Baranova, G.L. Rusinov, V.N. Charushin, A.A. Chistyakov, Pyrimidine-based dyes embedded in porous silicon microcavities for detection of nitroaromatic compounds, in: H. Bouma, R.J. Stokes, Y. Yitzhaky, R. Prabhu (Eds.), Counterterrorism, Crime Fight. Forensics, Surveill. Technol. 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Prabhu (Eds.), Counterterrorism, Crime Fight. Forensics, Surveill. Technol. III, SPIE, 2019: p. 9. doi:10.1117\/12.2532325.<\/p>\n<p>[8]\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 V.A. Krivenkov, P.S. Samokhvalov, A.A. Chistyakov, I. Nabiev, Resonance energy transfer from quantum dots to bacteriorhodopsin affects the saturation of two-photon absorption under a pulsed femtosecond excitation, in: M. Bertolotti, A.M. Zheltikov (Eds.), Nonlinear Opt. Appl. XI, SPIE, 2019: p. 43. doi:10.1117\/12.2520865.<\/p>\n<p>[9]\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 Y.D. Karnilava, P.A. Kholov, N. V. Gaponenko, T.F. Raichenok, S.A. Tikhomirov, I.L. Martynov, E. V. Osipov, A.A. Chistyakov, N.I. Kargin, Sol\u2013Gel Fabrication and Luminescence Properties of Multilayer Eu-Doped BaTiO 3 \u2013SiO 2 Xerogel Nanostructures, Int. J. Nanosci. 18 (2019) 1940044. doi:10.1142\/S0219581X19400441.<\/p>\n<p>[10]\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 A.Y. Saunina, V.R. Nikitenko, A.A. 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Buryakov, The Influence of the Annealing Regime on the Properties of Terahertz Antennas Based on Low-Temperature-Grown Gallium Arsenide, Tech. Phys. Lett. 44 (2018) 44\u201346. doi:10.1134\/S1063785018010169.<\/p>\n<p>[6]\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 V.A. Krivenkov, P.S. Samokhvalov, A.A. Chistyakov, I. Nabiev, Quantum Dots Improve Photovoltaic Properties of Purple Membranes under Near-Infrared Excitation, Opt. Spectrosc. 125 (2018) 747\u2013750. doi:10.1134\/S0030400X18110164.<\/p>\n<p>[7]\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 M.A. Zvaigzne, A.E. Aleksandrov, Y. V. Gol\u2019tyapin, D.A. Lypenko, A.R. Tameev, V.R. Nikitenko, A.A. Chistyakov, Study and Development of Photovoltaic Structures Based on Quantum Dot Solids of PbS with Various Ligands, Tech. Phys. Lett. 44 (2018) 1010\u20131012. doi:10.1134\/S1063785018110305.<\/p>\n<p>[8]\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 A.R. Tameev, M.A. Zvaigzne, A.E. Alexandrov, Y. Goltyapin, V.R. Nikitenko, A.A. Chistyakov, PbS quantum dot solids and quantum dot size gradient layers for photovoltaics, in: B. Li, C. Yu, X. Zhang, X. Zhang (Eds.), Optoelectron. Devices Integr. VII, SPIE, 2018: p. 5. doi:10.1117\/12.2502737.<\/p>\n<p>[9]\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 G.E. Kotkovskii, A.E. Akmalov, A. Teslya, A.A. Chistyakov, Using dopants to increase the sensitivity of a laser field asymmetric ion mobility spectrometer for detection of explosives, in: H. Bouma, R.J. Stokes, Y. Yitzhaky, R. Prabhu (Eds.), Counterterrorism, Crime Fight. Forensics, Surveill. Technol. II, SPIE, 2018: p. 9. doi:10.1117\/12.2325060.<\/p>\n<p>[10]\u00a0\u00a0\u00a0\u00a0\u00a0 I.L. Martynov, E. Osipov, G.E. Kotkovskii, I. Kryukova, Y. Kuzischcin, A.A. Chistyakov, Porous silicon microcavities with embedded conjugated polymers for explosives detection, in: H. Bouma, R.J. Stokes, Y. Yitzhaky, R. Prabhu (Eds.), Counterterrorism, Crime Fight. Forensics, Surveill. Technol. II, SPIE, 2018: p. 4. doi:10.1117\/12.2500192.<\/p>\n<p>[11]\u00a0\u00a0\u00a0\u00a0\u00a0 E.V. Osipov, I.L. Martynov, D.S. Dovzhenko, A.A. Chistyakov, Fabrication of optical sensors based on porous silicon microcavities with embedded conjugated polymers for explosives detection, in: 2018 Int. Conf. Laser Opt., IEEE, 2018: pp. 389\u2013389. doi:10.1109\/LO.2018.8435709.<\/p>\n<p>[12]\u00a0\u00a0\u00a0\u00a0\u00a0 I.L. Martynov, E. V. Osipov, G.E. Kotkovskii, A.E. Akmalov, A.A. Chistyakov, Effect of temperature on properties of explosives sensor based on porous silicon microcavity with an embedded conjugated polymer, in: 2018 Int. Conf. Laser Opt., IEEE, 2018: pp. 274\u2013274. doi:10.1109\/LO.2018.8435199.<\/p>\n<p>[13]\u00a0\u00a0\u00a0\u00a0\u00a0 V. Krivenkov, P. Samokhvalov, M. Zvaigzne, I. Martynov, A. Chistyakov, I. Nabiev, Ligand-Mediated Photobrightening and Photodarkening of CdSe\/ZnS Quantum Dot Ensembles, J. Phys. Chem. C. 122 (2018) 15761\u201315771. doi:10.1021\/acs.jpcc.8b04544.<\/p>\n<p>[14]\u00a0\u00a0\u00a0\u00a0\u00a0 A. Alexandrov, A. Tameev, A.A. Chistyakov, M. Zvaigzne, Y. Goltyapin, Influence of the surface ligands on the optical and electrical properties of PbS QD solids, in: D.L. Andrews, J.-M. Nunzi, A. Ostendorf, A.J. Bain (Eds.), Nanophotonics VII, SPIE, 2018: p. 115. doi:10.1117\/12.2306912.<\/p>\n<p>[15]\u00a0\u00a0\u00a0\u00a0\u00a0 A.E. Akmalov, G.E. Kotkovskii, S. V. Stolyarov, B.I. Verdiev, R.S. Ovchinnikov, A.A. Pochtovyy, A.P. Tkachuk, A.A. Chistyakov, High-performance aerosol sampler with liquid phase recirculation and pre-concentration of particles, Bull. Russ. State Med. Univ. (2018) 25\u201331. doi:10.24075\/brsmu.2018.049.<\/p>\n<p>[16]\u00a0\u00a0\u00a0\u00a0\u00a0 Y.A. Kuzishchin, I.L. Martynov, E. V. Osipov, P.S. Samokhvalov, A.A. Chistyakov, I.R. Nabiev, Comparison of fluorescence excitation modes for cdse semi-conductor quantum dots used in medical research, Bull. Russ. State Med. Univ. (2018) 39\u201345. doi:10.24075\/brsmu.2018.050.<\/p>\n<h4>2017 \u0433\u043e\u0434<\/h4>\n<p>1. Akmalov, AE, AA Chistyakov, GE Kotkovskii, IL Martynov, and EM Spitsin. \u201cLaser Ion Mobility Spectrometry in the Detection of Ultra-Low Quantities of Explosives.\u201d European Journal of Mass Spectrometry 23, no. 4 (August 8, 2017): 140\u201345. https:\/\/doi.org\/10.1177\/1469066717721696.<\/p>\n<p>2. Akmalov, Artem E, Alexander A Chistyakov, Olga I Dubkova, Gennadii E Kotkovskii, and Alexei V Sychev. \u201cActive Sampling System for Gas-Phase Analyzers.\u201d European Journal of Mass Spectrometry 23, no. 4 (August 28, 2017): 130\u201335. https:\/\/doi.org\/10.1177\/1469066717716919.<\/p>\n<p>3. Akmalov, Artem E, Alexander A Chistyakov, and Gennadii E Kotkovskii. \u201cLaser-Stimulated Desorption of Organic Molecules from Surfaces, as a Method of Increasing the Efficiency of Ion Mobility Spectrometry Analysis.\u201d European Journal of Mass Spectrometry 23, no. 4 (August 14, 2017): 174\u201380. https:\/\/doi.org\/10.1177\/1469066717714417.<\/p>\n<p>4. Chistyakov, A. A., M. A. Zvaigzne, V. R. Nikitenko, A. R. Tameev, I. L. Martynov, and O. V. Prezhdo. \u201cOptoelectronic Properties of Semiconductor Quantum Dot Solids for Photovoltaic Applications.\u201d The Journal of Physical Chemistry Letters 8, no. 17 (September 7, 2017): 4129\u201339. https:\/\/doi.org\/10.1021\/acs.jpclett.7b00671.<\/p>\n<p>5. Dayneko, S. V., P. S. Samokhvalov, D. Lypenko, G. I. Nosova, I. A. Berezin, A. V. Yakimanskii, A. A. Chistyakov, and I. Nabiev. \u201cA Highly Efficient White-Light-Emitting Diode Based on a Two-Component Polyfluorene\/Quantum Dot Composite.\u201d Optics and Spectroscopy 122, no. 1 (January 24, 2017): 12\u201315. https:\/\/doi.org\/10.1134\/S0030400X17010040.<\/p>\n<p>6. Dayneko, S. V., P. S. Samokhvalov, D. Lypenko, G. I. Nosova, I. A. Berezin, A. V. Yakimanskii, A. A. Chistyakov, and I. Nabiev. \u201cErratum to: \u2018A Highly Efficient White-Light-Emitting Diode Based on a Two-Component Polyfluorene\/Quantum Dot Composite.\u2019\u201d Optics and Spectroscopy 122, no. 6 (June 23, 2017): 1020\u20131020. https:\/\/doi.org\/10.1134\/S0030400X1706025X.<\/p>\n<p>7. Dovzhenko, D. S., I. L. Martynov, I. S. Kryukova, A. A. Chistyakov, and I. R. Nabiev. \u201cModeling of the Optical Properties of Porous Silicon Photonic Crystals in the Visible Spectral Range.\u201d Optics and Spectroscopy 122, no. 1 (January 24, 2017): 79\u201382. https:\/\/doi.org\/10.1134\/S0030400X17010064.<\/p>\n<p>8. Kotkovskii, Gennadii, Artem E. Akmalov, Alexander A. Chistyakov, and Alexey V. Sychev. \u201cActive Vortex Sampling System for Remote Contactless Survey of Surfaces by Laser-Based Field Asymmetrical Ion Mobility Spectrometer.\u201d In Counterterrorism, Crime Fighting, Forensics, and Surveillance Technologies, edited by Henri Bouma, Felicity Carlysle-Davies, Robert J. Stokes, and Yitzhak Yitzhaky, 5. SPIE, 2017. https:\/\/doi.org\/10.1117\/12.2279011.<\/p>\n<p>9. Krivenkov, V. A., P. S. Samokhvalov, R. S. Bilan, A. A. Chistyakov, and I. R. Nabiev. \u201cResonant Transfer of One- and Two-Photon Excitations in Quantum Dot\u2013bacteriorhodopsin Complexes.\u201d Optics and Spectroscopy 122, no. 1 (January 24, 2017): 36\u201341. https:\/\/doi.org\/10.1134\/S0030400X1701012X.<\/p>\n<p>10. Osipov, E. V., I. L. Martynov, D. S. Dovzhenko, P. S. Ananev, G. E. Kotkovskii, and A. A. Chistyakov. \u201cSilicon Photonic Structures with Embedded Polymers for Novel Sensing Methods.\u201d Optics and Spectroscopy 122, no. 1 (January 24, 2017): 74\u201378. https:\/\/doi.org\/10.1134\/S0030400X17010222.<\/p>\n<p>11. Zvaigzne, M. A., A. E. Aleksandrov, P. S. Samokhvalov, I. L. Martynov, D. A. Lypenko, A. R. Tameev, V. R. Nikitenko, and A. A. Chistyakov. \u201cInfluence of the Surface Ligand Molecules Length on the Optical Properties and Photoconductivity of PbS Quantum Dot Condensates.\u201d Technical Physics Letters 43, no. 10 (October 5, 2017): 879\u201381. https:\/\/doi.org\/10.1134\/S1063785017100133.<\/p>\n<h4>2016 \u0433\u043e\u0434<\/h4>\n<p>1. Akmalov, A E, A A Chistyakov, and G E Kotkovskii. \u201cLaser Desorption of Traces of Low Volatile Explosives.\u201d Journal of Physics: Conference Series 737 (August 2016): 012039. https:\/\/doi.org\/10.1088\/1742-6596\/737\/1\/012039.<\/p>\n<p>2. Akmalov, Artem E., Alexander A. Chistyakov, Olga I. Dubkova, Gennadii E. Kotkovskii, Evgenii M. Spitsyn, and Nikolai M. Buzinov. \u201cLaser Desorption of Explosives Traces at Ambient Conditions.\u201d edited by Douglas Burgess, Gari Owen, Henri Bouma, Felicity Carlysle-Davies, Robert J. Stokes, and Yitzhak Yitzhaky, 99950G, 2016. https:\/\/doi.org\/10.1117\/12.2241813.<\/p>\n<p>3. Akmalov, Artem E., Alexander A. Chistyakov, and Gennadii E. Kotkovskii. \u201cEffectiveness of Laser Sources for Contactless Sampling of Explosives.\u201d edited by Steven S. Bishop and Jason C. Isaacs, 982311, 2016. https:\/\/doi.org\/10.1117\/12.2222188.<\/p>\n<p>4. Chistyakov, A A, K I Kozlovskii, G E Kotkovskii, Yu A Kuzishchin, V A Krivenkov, Yu. A Mityagin, and I N Piryazev. \u201cThe Study of Photocurrent and Power of THz Radiation Photoconductive Antennas Based on GaAs Dependence on Geometry of Focusing and Radiation Parametres of Femtosecond Laser.\u201d Journal of Physics: Conference Series 737 (August 2016): 012020. https:\/\/doi.org\/10.1088\/1742-6596\/737\/1\/012020.<\/p>\n<p>5. Dayneko, Sergey, Pavel Linkov, Igor Martynov, Alexey Tameev, Marine Tedoradze, Pavel Samokhvalov, Igor Nabiev, and Alexander Chistyakov. \u201cPhotoconductivity of Composites Based on CdSe Quantum Dots and Low-Band-Gap Polymers.\u201d Physica E: Low-Dimensional Systems and Nanostructures 79 (May 2016): 206\u201311. https:\/\/doi.org\/10.1016\/j.physe.2016.01.007.<\/p>\n<p>6. Dayneko, Sergey, Dmitriy Lypenko, Pavel Linkov, Nataliya Sannikova, Pavel Samokhvalov, Vladimir Nikitenko, and Alexander Chistyakov. \u201cApplication of CdSe\/ZnS\/CdS\/ZnS Core\u2013multishell Quantum Dots to Modern OLED Technology.\u201d Materials Today: Proceedings 3, no. 2 (2016): 211\u201315. https:\/\/doi.org\/10.1016\/j.matpr.2016.01.059.<\/p>\n<p>7. Dayneko, Sergey, Dmitriy Lypenko, Pavel Linkov, Nataliya Sannikova, Pavel Samokhvalov, Vladimir Nikitenko, and Alexander Chistyakov. \u201cApplication of CdSe\/ZnS\/CdS\/ZnS Core\u2013multishell Quantum Dots to Modern OLED Technology.\u201d Materials Today: Proceedings 3, no. 2 (2016): 211\u201315. https:\/\/doi.org\/10.1016\/j.matpr.2016.01.059.<\/p>\n<p>8. Dovzhenko, Dmitriy S., Igor L. Martynov, Pavel S. Samokhvalov, Konstantin E. Mochalov, Alexander A. Chistyakov, and Igor Nabiev. \u201cModulation of Quantum Dot Photoluminescence in Porous Silicon Photonic Crystals as a Function of the Depth of Their Penetration.\u201d edited by Dario Gerace, Gabriel Lozano, Christelle Monat, and Sergei G. Romanov, 988507, 2016. https:\/\/doi.org\/10.1117\/12.2228990.<\/p>\n<p>9. Dovzhenko, Dmitriy, Evgeniy Osipov, Igor Martynov, Pavel Samokhvalov, Igor Eremin, Gennadii Kotkovskii, and Alexander Chistyakov. \u201cPorous Silicon Microcavity Modulates the Photoluminescence Spectra of Organic Polymers and Quantum Dots.\u201d Materials Today: Proceedings 3, no. 2 (2016): 485\u201390. https:\/\/doi.org\/10.1016\/j.matpr.2016.01.048.<\/p>\n<p>10. Dovzhenko, Dmitriy, Evgeniy Osipov, Igor Martynov, Pavel Samokhvalov, Igor Eremin, Gennadii Kotkovskii, and Alexander Chistyakov. \u201cPorous Silicon Microcavity Modulates the Photoluminescence Spectra of Organic Polymers and Quantum Dots.\u201d Materials Today: Proceedings 3, no. 2 (2016): 485\u201390. https:\/\/doi.org\/10.1016\/j.matpr.2016.01.048.<\/p>\n<p>11. Krivenkov, Victor, Pavel Linkov, Daria Solovyeva, Regina Bilan, Alexander Chistyakov, and Igor Nabiev. \u201cTwo-Photon-Induced F\u00f6rster Resonance Energy Transfer in a Quantum Dot\u2013bacteriorhodopsin Hybrid Material.\u201d Materials Today: Proceedings 3, no. 2 (2016): A1\u20135. https:\/\/doi.org\/10.1016\/j.matpr.2016.03.063.<\/p>\n<p>12. Krivenkov, Victor, Anna Tretyachenko, Pavel S. Samokhvalov, Alexander A. Chistyakov, and Igor Nabiev. \u201cControllable Photo-Brightening\/Photo-Darkening of Semiconductor Quantum Dots under Laser Irradiation.\u201d edited by David L. Andrews, Jean-Michel Nunzi, and Andreas Ostendorf, 98843L, 2016. https:\/\/doi.org\/10.1117\/12.2228815.<\/p>\n<p>13. Kuzishchin, Yury, Gennadii Kotkovskii, Igor Martynov, Dmitriy Dovzhenko, and Alexander Chistyakov. \u201cA New Approach for Detection of Explosives Based on Ion Mobility Spectrometry and Laser Desorption\/Ionization on Porous Silicon.\u201d edited by Augustus W. Fountain, 98241A, 2016. https:\/\/doi.org\/10.1117\/12.2224243.<\/p>\n<p>14. Rakhimov, R A, E V Osipov, D S Dovzhenko, I L Martynov, and A A Chistyakov. \u201cInfluence of Electro-Chemical Etching Parameters on the Reflectance Spectra of Porous Silicon Rugate Filters.\u201d Journal of Physics: Conference Series 737 (August 2016): 012026. https:\/\/doi.org\/10.1088\/1742-6596\/737\/1\/012026.<\/p>\n<p>15. Zasedatelev, Anton V., Tatiana V. Dubinina, Denis M. Krichevsky, Vitaly I. Krasovskii, Vladimir Yu. Gak, Victor E. Pushkarev, Larisa G. Tomilova, and Alexander A. Chistyakov. \u201cPlasmon-Induced Light Absorption of Phthalocyanine Layer in Hybrid Nanoparticles: Enhancement Factor and Effective Spectra.\u201d The Journal of Physical Chemistry C 120, no. 3 (January 28, 2016): 1816\u201323. https:\/\/doi.org\/10.1021\/acs.jpcc.5b08804.<\/p>\n<h4>2015 \u0433\u043e\u0434<\/h4>\n<p>1. Akmalov, A.E., A.A. Chistyakov, and G.E. Kotkovskii. \u201cLaser Desorption of Explosives Traces with Low Vapors Pressure.\u201d Physics Procedia 71 (2015): 207\u201311. https:\/\/doi.org\/10.1016\/j.phpro.2015.08.370.<\/p>\n<p>2. Akmalov, A.E., A.A. Chistyakov, and G.E. Kotkovskii. \u201cLaser Desorption of Explosives Traces with Low Vapors Pressure.\u201d Physics Procedia 71 (2015): 207\u201311. https:\/\/doi.org\/10.1016\/j.phpro.2015.08.370.<\/p>\n<p>3. Akmalov, Artem E., Alexander A. Chistyakov, and Gennadii E. Kotkovskii. \u201cLaser Desorption of Explosives as a Way to Create an Effective Non-Contact Sampling Device.\u201d edited by Douglas Burgess, Gari Owen, Harbinder Rana, Roberto Zamboni, Fran\u00e7ois Kajzar, and Attila A. Szep, 965206, 2015. https:\/\/doi.org\/10.1117\/12.2190819.<\/p>\n<p>4. Akmalov, Artem E., Alexander A Chistyakov, and Gennadii E. Kotkovskii. \u201cLaser Desorption of Explosives as a Way to Create an Effective Non-Contact Sampling Device.\u201d In Proc. of SPIE (\u0422\u0443\u043b\u0443\u0437\u0430), edited by Douglas Burgess, Gari Owen, Harbinder Rana, Roberto Zamboni, Fran\u00e7ois Kajzar, and Attila A. Szep, 965206, 2015. https:\/\/doi.org\/10.1117\/12.2190819.<\/p>\n<p>5. Aleksandrova, E. L., V. M. Svetlichnyi, N. V. Matyushina, L. A. Myagkova, S. V. Daineko, I. L. Martynov, and A. R. Tameev. \u201cLuminescence-Kinetic Spectroscopy of Compound Complexes of Polyphenylquinolines.\u201d Semiconductors 49, no. 7 (July 14, 2015): 959\u201361. https:\/\/doi.org\/10.1134\/S1063782615070027.<\/p>\n<p>6. Chistyakov, A.A., G.E. Kotkovskii, I.P. Odulo, E.M. Spitsyn, and A.V. Shestakov. \u201cA Method of Highly Sensitive Detecting of Explosives on the Basis of FAIMS Analyzer with Laser Ion Source.\u201d Physics Procedia 71 (2015): 293\u201397. https:\/\/doi.org\/10.1016\/j.phpro.2015.08.329.<\/p>\n<p>7. Chistyakov, A.A., G.E. Kotkovskii, I.P. Odulo, E.M. Spitsyn, and A.V. Shestakov. \u201cA Method of Highly Sensitive Detecting of Explosives on the Basis of FAIMS Analyzer with Laser Ion Source.\u201d Physics Procedia 71 (2015): 293\u201397. https:\/\/doi.org\/10.1016\/j.phpro.2015.08.329.<\/p>\n<p>8. Chistyakov, Alexander A., Gennadii E. Kotkovskii, Ivan P. Odulo, Alexey V. Sychev, Artem S. Bogdanov, Anatoly N. Perederiy, Evgeny M. Spitsyn, and Alexander V. Shestakov. \u201cA Method for Detecting Ultra-Low Quantities of Explosives with Use a Picosecond Laser FAIMS Analyzer.\u201d edited by Steven S. Bishop and Jason C. Isaacs, 94540S, 2015. https:\/\/doi.org\/10.1117\/12.2085299.<\/p>\n<p>9. Chistyakov, Alexander A., Gennadii E. Kotkovskii, Ivan P. Odulo, Alexey V. Sychev, Artem S. Bogdanov, Anatoly N. Perederiy, Evgeny M. Spitsyn, and Alexander V. Shestakov. \u201cA Method for Detecting Ultra-Low Quantities of Explosives with Use a Picosecond Laser FAIMS Analyzer.\u201d In Proc. SPIE 9454, edited by Steven S. Bishop and Jason C. Isaacs, 94540S, 2015. https:\/\/doi.org\/10.1117\/12.2085299.<\/p>\n<p>10. Dayneko, Sergey, Pavel Samokhvalov, Igor Martynov, Alexander Chistyakov, Alexey Tameev, and Marine Tedoradze. \u201cPhotovoltaic Structures Based on Organic Semiconductors and Cdse Quantum Dots.\u201d In Nanomeeting 2015, 2015. http:\/\/www.nanomeeting.org\/archive.php.<\/p>\n<p>11. Dovzhenko, D., E. Osipov, I. Martynov, and P. Linkov. \u201cSpatial and spectral properties of CdSe\/CdS\/ZnS quantum dots luminescence in one-dimensional photonic structures based on porous silicon.\u201d In Physics, Chemistry and Applications of Nanostructures, 144\u201347. World scientific, 2015. https:\/\/doi.org\/10.1142\/9789814696524_0037.<\/p>\n<p>12. Dovzhenko, Dmitriy, Evgeniy Osipov, Igor Martynov, Pavel Linkov, and Alexander Chistyakov. \u201cEnhancement of Spontaneous Emission from CdSe\/CdS\/ZnS Quantum Dots at the Edge of the Photonic Band Gap in a Porous Silicon Bragg Mirror.\u201d Physics Procedia 73 (2015): 126\u201330. https:\/\/doi.org\/10.1016\/j.phpro.2015.09.132.<\/p>\n<p>13. Dovzhenko, Dmitriy, Evgeniy Osipov, Igor Martynov, Pavel Linkov, and Alexander Chistyakov. \u201cEnhancement of Spontaneous Emission from CdSe\/CdS\/ZnS Quantum Dots at the Edge of the Photonic Band Gap in a Porous Silicon Bragg Mirror.\u201d Physics Procedia 73 (2015): 126\u201330. https:\/\/doi.org\/10.1016\/j.phpro.2015.09.132.<\/p>\n<p>14. Kozlovskij, K.I., E.D. Vovchenko, and A.A. Isaev. \u201cNeutron Generation in a Vacuum Diode with Laser-Plasma Source of Deuterons.\u201d Physics Procedia 71 (2015): 176\u201380. https:\/\/doi.org\/10.1016\/j.phpro.2015.08.346.<\/p>\n<p>15. Krivenkov, Victor A., Alexander Chistyakov, Pavel Samokhvalov, Daria O. Solovyeva, and Regina Bilan. \u201cF\u00f6rster Resonance Energy Transfer under One and Two-Photon Excitation in Nano-Bio Hybrid Complexes Forming from Quantum Dots and Bacteriorhodopsin.\u201d In Nanomeeting 2015, 2015. http:\/\/www.nanomeeting.org\/archive.php.<\/p>\n<p>16. Krivenkov, Victor A., Pavel S. Samokhvalov, Pavel A. Linkov, Sergey D. Prokhorov, Igor L. Martynov, Alexander A. Chistyakov, and Igor Nabiev. \u201cEffects of Surface Ligands and Solvents on Quantum Dot Photostability under Pulsed UV Laser Irradiation.\u201d edited by Konrad Banaszek and Christine Silberhorn, 95050U, 2015. https:\/\/doi.org\/10.1117\/12.2179240.<\/p>\n<p>17. Krivenkov, Victor a., Pavel S. Samokhvalov, Pavel a. Linkov, Sergey D. Prokhorov, Igor L. Martynov, Alexander a. Chistyakov, and Igor Nabiev. \u201cEffects of Surface Ligands and Solvents on Quantum Dot Photostability under Pulsed UV Laser Irradiation.\u201d In Proc. SPIE 9505, edited by Konrad Banaszek and Christine Silberhorn, 95050U, 2015. https:\/\/doi.org\/10.1117\/12.2179240.<\/p>\n<p>18. Krivenkov, Victor, Pavel Linkov, Daria Solovyeva, Regina Bilan, Alexander Chistyakov, and Igor Nabiev. \u201cEnergy Transfer Processes Under One-and Two-Photon Excitation of Nano-Biohybrid Structures Based on Semiconductor Quantum Dots and Purple Membranes.\u201d Physics Procedia 73 (2015): 143\u201349. https:\/\/doi.org\/10.1016\/j.phpro.2015.09.135.<\/p>\n<p>19. Krivenkov, Victor, Pavel Linkov, Daria Solovyeva, Regina Bilan, Alexander Chistyakov, and Igor Nabiev. \u201cEnergy Transfer Processes Under One-and Two-Photon Excitation of Nano-Biohybrid Structures Based on Semiconductor Quantum Dots and Purple Membranes.\u201d Physics Procedia 73 (2015): 143\u201349. https:\/\/doi.org\/10.1016\/j.phpro.2015.09.135.<\/p>\n<p>20. Krivenkov, Victor, Pavel Samokhvalov, Daria Solovyeva, Regina Bilan, Alexander Chistyakov, and Igor Nabiev. \u201cTwo-Photon-Induced F\u00f6rster Resonance Energy Transfer in a Hybrid Material Engineered from Quantum Dots and Bacteriorhodopsin.\u201d Optics Letters 40, no. 7 (April 1, 2015): 1440. https:\/\/doi.org\/10.1364\/OL.40.001440.<\/p>\n<p>21. Krivenkov, Victor, Pavel Samokhvalov, Daria Solovyeva, Regina Bilan, Alexander Chistyakov, and Igor Nabiev. \u201cTwo-Photon-Induced F\u00f6rster Resonance Energy Transfer in a Hybrid Material Engineered from Quantum Dots and Bacteriorhodopsin.\u201d Optics Letters 40, no. 7 (April 1, 2015): 1440. https:\/\/doi.org\/10.1364\/OL.40.001440.<\/p>\n<p>22. Kuzishchin, Yury, Dmitriy Dovzhenko, Igor Martynov, Genadii Kotkovskii, and Alexander Chistyakov. \u201cDissociation of Trinitrotoluene on the Surface of Porous Silicon Under Laser Irradiation.\u201d Physics Procedia 73 (2015): 159\u201362. https:\/\/doi.org\/10.1016\/j.phpro.2015.09.146.<\/p>\n<p>23. Kuzishchin, Yury, Dmitriy Dovzhenko, Igor Martynov, Genadii Kotkovskii, and Alexander Chistyakov. \u201cDissociation of Trinitrotoluene on the Surface of Porous Silicon Under Laser Irradiation.\u201d Physics Procedia 73 (2015): 159\u201362. https:\/\/doi.org\/10.1016\/j.phpro.2015.09.146.<\/p>\n<p>24. Kuzishchin, Yury, Igor Martynov, Dmitriy Dovzhenko, Gennadii Kotkovskii, and Alexander Chistyakov. \u201cSurface-Assisted Laser Desorption\/Ionization of Trinitrotoluene on Porous Silicon under Ambient Conditions.\u201d The Journal of Physical Chemistry C 119, no. 11 (March 19, 2015): 6382\u201388. https:\/\/doi.org\/10.1021\/jp5129063.<\/p>\n<p>25. Kuzishchin, Yury, Igor Martynov, Dmitriy Dovzhenko, Gennadii Kotkovskii, and Alexander Chistyakov. \u201cSurface-Assisted Laser Desorption\/Ionization of Trinitrotoluene on Porous Silicon under Ambient Conditions.\u201d The Journal of Physical Chemistry C 119, no. 11 (March 19, 2015): 6382\u201388. https:\/\/doi.org\/10.1021\/jp5129063.<\/p>\n<p>26. Linkov, Pavel, Victor Krivenkov, Pavel Samokhvalov, and Igor Nabiev. \u201cHigh Quantum Yield CdSe\/ZnS\/CdS\/ZnS Multishell Quantum Dots for Biosensing and Optoelectronic Applications.\u201d In Advances in Functional Materials (Conference 2015), AFM 2015, 2015.<\/p>\n<p>27. Martynov, Igor, Yury Kuzishchin, Dmitriy Dovzhenko, Genadii Kotkovskii, and Alexander Chistyakov. \u201cIonization of the Nitroaromatic Compounds in an Ion Mobility Spectrometer with an Ion Source Based on Porous Silicon Under Laser Irradiation.\u201d Physics Procedia 73 (2015): 163\u201367. https:\/\/doi.org\/10.1016\/j.phpro.2015.09.147.<\/p>\n<p>28. Martynov, Igor, Yury Kuzishchin, Dmitriy Dovzhenko, Genadii Kotkovskii, and Alexander Chistyakov. \u201cIonization of the Nitroaromatic Compounds in an Ion Mobility Spectrometer with an Ion Source Based on Porous Silicon Under Laser Irradiation.\u201d Physics Procedia 73 (2015): 163\u201367. https:\/\/doi.org\/10.1016\/j.phpro.2015.09.147.<\/p>\n<p>29. S.A., Savinov, Mityagin Yu.A., A.A. Chistyakov, Kozlovsky K.I., Yu. A. Kuzishchin, V A Krivenkov, Egorkin V.I., and Kazakov I.P. \u201cA Study of Emission Power and Spectrum of LT-GaAs Based THz Photoconductive Antennas.\u201d Physics Procedia, 2015. https:\/\/doi.org\/10.1016\/j.phpro.2015.09.121.<\/p>\n<p>30. Savinov, S.A., Yu.A. Mityagin, A.A. Chistyakov, K.I. Kozlovsky, Yu.A. Kuzishchin, V.A. Krivenkov, V.I. Egorkin, and I.P. Kazakov. \u201cA Study of Emission Power and Spectrum of LT-GaAs Based THz Photoconductive Antennas.\u201d Physics Procedia 73 (2015): 54\u201358. https:\/\/doi.org\/10.1016\/j.phpro.2015.09.121.<\/p>\n<p>31. Shikanov, A. E., E. D. Vovchenko, K. I. Kozlovskii, and V. L. Shatokhin. \u201cSmall-Size Plasma Diode with a Transparent Internal Cathode for Neutron Generation.\u201d Technical Physics 60, no. 1 (January 2015): 48\u201352. https:\/\/doi.org\/10.1134\/S1063784215010223.<\/p>\n<p>32. Shikanov, A. E., E. D. Vovchenko, K. I. Kozlovskii, and V. L. Shatokhin. \u201cA Diode for Accelerating Hydrogen Nuclides with Electron Conductivity Suppressed by an Internal Ring Magnet.\u201d Technical Physics Letters 41, no. 5 (May 2015): 511\u201313. https:\/\/doi.org\/10.1134\/S1063785015050284.<\/p>\n<p>33. Shikanov, A.E., B.Y. Bogdanovich, K.I. Kozlovsky, A.V. Nesterovich, V.L. Shatokhin, and E.D. Vovchenko. \u201cDeuterons Extraction from Vacuum-Arc Plasma.\u201d Physics Procedia 71 (2015): 187\u201391. https:\/\/doi.org\/10.1016\/j.phpro.2015.08.376.<\/p>\n<p>34. Zasedatelev, A, T Dubinina, V Krasovskii, O Suprunova, L Tomilova, and A Chistyakov. \u201cResonant Plasmon-Stimulated Nonlinear Absorption in Three-Level Systems.\u201d Journal of Physics: Conference Series 643 (November 2, 2015): 012049. https:\/\/doi.org\/10.1088\/1742-6596\/643\/1\/012049.<\/p>\n<p>35. Zvaigzne, M., I. Martynov, P. Samokhvalov, K. Mochalov, and A. Chistyakov. \u201cInfluence of Surface Ligands on the Luminescent Properties of Cadmium Selenide Quantum Dots in a Polymethylmethacrylate Matrix.\u201d Physics Procedia 73 (2015): 150\u201355. https:\/\/doi.org\/10.1016\/j.phpro.2015.09.140.<\/p>\n<p>36. Zvaigzne, Maria, Igor Martynov, Pavel Samokhvalov, K.E. Mochalov, and Alexander Chistyakov. \u201cInfluence of Surface Ligands on the Luminescent Properties of Cadmium Selenide Quantum Dots in a Polymethylmethacrylate Matrix.\u201d Physics Procedia 73 (2015): 150\u201355. https:\/\/doi.org\/10.1016\/j.phpro.2015.09.140.<\/p>\n<h4>2014 \u0433\u043e\u0434<\/h4>\n<p>1. Akmalov, Artem E., Alexander A. Chistyakov, Gennadii E. Kotkovskii, Alexey V. Sychev, Anton V. Tugaenko, Artem S. Bogdanov, Anatoly N. Perederiy, and Eugene M. Spitsyn. \u201cA Laser-Based FAIMS Detector for Detection of Ultra-Low Concentrations of Explosives.\u201d edited by Mark Dubinskii and Stephen G. Post, 90810E, 2014. https:\/\/doi.org\/10.1117\/12.2049820.<\/p>\n<p>2. Akmalov, Artem E., Alexander A. Chistyakov, Gennadii E. Kotkovskii, Alexey V. Sychev, Anton V. Tugaenko, Artem S. Bogdanov, Anatoly N. Perederiy, and Eugene M. Spitsyn. \u201cA Laser-Based FAIMS Detector for Detection of Ultra-Low Concentrations of Explosives.\u201d In Proceedings of SPIE &#8211; The International Society for Optical Engineering, edited by Mark Dubinskii and Stephen G. Post, 9081:90810E. SPIE, 2014. https:\/\/doi.org\/10.1117\/12.2049820.<\/p>\n<p>3. Chistyakov, A A, G E Kotkovskii, A V Sychev, A V Tugaenko, A S Bogdanov, A N Perederiy, and E M Spitsyn. \u201cIntracavity Laser Field Asymmetric Ion Mobility Spectrometer for Highly Efficient Detection of Organics.\u201d Laser Physics Letters 11, no. 6 (June 1, 2014): 065605. https:\/\/doi.org\/10.1088\/1612-2011\/11\/6\/065605.<\/p>\n<p>4. Chistyakov, A A, G E Kotkovskii, A V Sychev, A V Tugaenko, A S Bogdanov, A N Perederiy, and E M Spitsyn. \u201cIntracavity Laser Field Asymmetric Ion Mobility Spectrometer for Highly Efficient Detection of Organics.\u201d Laser Physics Letters 11, no. 6 (June 1, 2014): 065605. https:\/\/doi.org\/10.1088\/1612-2011\/11\/6\/065605.<\/p>\n<p>5. Chistyakov, Alexander A., Gennadii E. Kotkovskii, Alexey V. Sychev, Ivan P. Odulo, Artem S. Bogdanov, Anatoly N. Perederiy, Evgeny M. Spitsyn, and Alexander V. Shestakov. \u201cA Picosecond Laser FAIMS Analyzer for Detecting Ultralow Quantities of Explosives.\u201d edited by Douglas Burgess, Gari Owen, Harbinder Rana, Roberto Zamboni, Fran\u00e7ois Kajzar, and Attila A. Szep, 925302, 2014. https:\/\/doi.org\/10.1117\/12.2065550.<\/p>\n<p>6. Chistyakov, Alexander A., Gennadii E. Kotkovskii, Alexey V. Sychev, Anatoly N. Perederiy, V. L. Budovich, and D. V. Budovich. \u201cAn Excimer-Based FAIMS Detector for Detection of Ultra-Low Concentration of Explosives.\u201d edited by Steven S. Bishop and Jason C. Isaacs, 907211, 2014. https:\/\/doi.org\/10.1117\/12.2049823.<\/p>\n<p>7. Chistyakov, Alexander A., Gennadii E. Kotkovskii, Alexey V. Sychev, Anatoly N. Perederiy, V. L. Budovich, and D. V. Budovich. \u201cAn Excimer-Based FAIMS Detector for Detection of Ultra-Low Concentration of Explosives.\u201d In Proceedings of SPIE &#8211; The International Society for Optical Engineering, edited by Steven S. Bishop and Jason C. Isaacs, 907211, 2014. https:\/\/doi.org\/10.1117\/12.2049823.<\/p>\n<p>8. Dayneko, Sergey, Dmitriy Lypenko, Pavel Linkov, Alexey Tameev, Igor Martynov, Pavel Samokhvalov, and Alexander Chistyakov. \u201cEffect of Surface Ligands on the Performance of Organic Light-Emitting Diodes Containing Quantum Dots.\u201d In Proceedings of SPIE &#8211; The International Society for Optical Engineering, edited by Xuping Zhang, Hai Ming, and Changyuan Yu, 927009, 2014. https:\/\/doi.org\/10.1117\/12.2071062.<\/p>\n<p>9. Dayneko, Sergey, Dmitriy Lypenko, Pavel Linkov, Alexey Tameev, Igor Martynov, Pavel Samokhvalov, and Alexander Chistyakov. \u201cEffect of Surface Ligands on the Performance of Organic Light-Emitting Diodes Containing Quantum Dots.\u201d edited by Xuping Zhang, Hai Ming, and Changyuan Yu, 927009, 2014. https:\/\/doi.org\/10.1117\/12.2071062.<\/p>\n<p>10. Dayneko, Sergey, Alexey Tameev, Marine Tedoradze, Igor Martynov, Pavel Linkov, Pavel Samokhvalov, Igor Nabiev, and Alexander Chistyakov. \u201cHybrid Bulk Heterojunction Solar Cells Based on Low Band Gap Polymers and CdSe Nanocrystals.\u201d edited by Alexandre Freundlich and Jean-Fran\u00e7ois Guillemoles, 898113, 2014. https:\/\/doi.org\/10.1117\/12.2038126.<\/p>\n<p>11. Dayneko, Sergey, Alexey Tameev, Marine Tedoradze, Igor Martynov, Pavel Linkov, Pavel Samokhvalov, Igor Nabiev, and Alexander Chistyakov. \u201cHybrid Bulk Heterojunction Solar Cells Based on Low Band Gap Polymers and CdSe Nanocrystals.\u201d In Proceedings of SPIE &#8211; The International Society for Optical Engineering, edited by Alexandre Freundlich and Jean-Fran\u00e7ois Guillemoles, 8981:898113. SPIE, 2014. https:\/\/doi.org\/10.1117\/12.2038126.<\/p>\n<p>12. Dovzhenko, D. S., Yu. A. Kuzishchin, I. L. Martynov, I. S. Eremin, G. E. Kotkovski\u012d, A. A. Chistyakov, V. I. Krasovski\u012d, and I. P. Sipa\u012dlo. \u201cThe Mechanism of Laser-Stimulated Desorption\/Ionization of Nitroaromatic Compounds from a Nanoporous Silicon Surface at Atmospheric Pressure.\u201d Journal of Optical Technology 81, no. 8 (August 5, 2014): 435. https:\/\/doi.org\/10.1364\/JOT.81.000435.<\/p>\n<p>13. Dovzhenko, D. S., Yu. A. Kuzishchin, I. L. Martynov, I. S. Eremin, G. E. Kotkovski\u012d, A. A. Chistyakov, V. I. Krasovski\u012d, and I. P. Sipa\u012dlo. \u201cThe Mechanism of Laser-Stimulated Desorption\/Ionization of Nitroaromatic Compounds from a Nanoporous Silicon Surface at Atmospheric Pressure.\u201d Journal of Optical Technology 81, no. 8 (August 1, 2014): 435. https:\/\/doi.org\/10.1364\/JOT.81.000435.<\/p>\n<p>14. Dovzhenko, Dmitriy S., Igor L. Martynov, Pavel S. Samokhvalov, Igor S. Eremin, Gennadii E. Kotkovskii, Igor P. Sipailo, and Alexander A. Chistyakov. \u201cPhotoluminescence of CdSe\/ZnS Quantum Dots in a Porous Silicon Microcavity.\u201d edited by David L. Andrews, Jean-Michel Nunzi, and Andreas Ostendorf, 91263O, 2014. https:\/\/doi.org\/10.1117\/12.2057922.<\/p>\n<p>15. Dovzhenko, Dmitriy S., Igor L. Martynov, Pavel S. Samokhvalov, Igor S. Eremin, Gennadii E. Kotkovskii, Igor P. Sipailo, and Alexander A. Chistyakov. \u201cPhotoluminescence of CdSe\/ZnS Quantum Dots in a Porous Silicon Microcavity.\u201d In Proceedings of SPIE &#8211; The International Society for Optical Engineering, edited by David L. Andrews, Jean-Michel Nunzi, and Andreas Ostendorf, 9126:91263O. SPIE, 2014. https:\/\/doi.org\/10.1117\/12.2057922.<\/p>\n<p>16. Krivenkov, V A, D O Solovyeva, P S Samokhvalov, K I Brazhnik, G E Kotkovskiy, A A Chistyakov, E P Lukashev, and I R Nabiev. \u201cPhotoinduced Modification of Quantum Dot Optical Properties Affects Bacteriorhodopsin Photocycle in a (Quantum Dot)- Bacteriorhodopsin Hybrid Material.\u201d Journal of Physics: Conference Series 541 (October 27, 2014): 012045. https:\/\/doi.org\/10.1088\/1742-6596\/541\/1\/012045.<\/p>\n<p>17. Krivenkov, V A, D O Solovyeva, P S Samokhvalov, R S Grinevich, K I Brazhnik, G E Kotkovskii, E P Lukashev, and A A Chistyakov. \u201cResonance Energy Transfer in Nano-Bio Hybrid Structures Can Be Modulated by UV Laser Irradiation.\u201d Laser Physics Letters 11, no. 11 (November 1, 2014): 115601. https:\/\/doi.org\/10.1088\/1612-2011\/11\/11\/115601.<\/p>\n<p>18. Krivenkov, V A, D O Solovyeva, P S Samokhvalov, R S Grinevich, K I Brazhnik, G E Kotkovskii, E P Lukashev, and A A Chistyakov. \u201cResonance Energy Transfer in Nano-Bio Hybrid Structures Can Be Modulated by UV Laser Irradiation.\u201d Laser Physics Letters 11, no. 11 (November 1, 2014): 115601. https:\/\/doi.org\/10.1088\/1612-2011\/11\/11\/115601.<\/p>\n<p>19. Krivenkov, Victor A., Pavel S. Samokhvalov, Pavel A. Linkov, Daria O. Solovyeva, Gennadii E. Kotkovskii, Alexander A. Chistyakov, and Igor Nabiev. \u201cSurface Ligands Affect Photoinduced Modulation of the Quantum Dots Optical Performance.\u201d In Proceedings of SPIE &#8211; The International Society for Optical Engineering, edited by David L. Andrews, Jean-Michel Nunzi, and Andreas Ostendorf, 9126:91263N. SPIE, 2014. https:\/\/doi.org\/10.1117\/12.2057828.<\/p>\n<p>20. Krivenkov, Victor A., Pavel S. Samokhvalov, Pavel A. Linkov, Daria O. Solovyeva, Gennadii E. Kotkovskii, Alexander A. Chistyakov, and Igor Nabiev. \u201cSurface Ligands Affect Photoinduced Modulation of the Quantum Dots Optical Performance.\u201d edited by David L. Andrews, Jean-Michel Nunzi, and Andreas Ostendorf, 91263N, 2014. https:\/\/doi.org\/10.1117\/12.2057828.<\/p>\n<p>21. Zaitsev, Sergei Yu, Eugeni P Lukashev, Daria O Solovyeva, Alexander A Chistyakov, and Vladimir A Oleinikov. \u201cControlled Influence of Quantum Dots on Purple Membranes at Interfaces.\u201d Colloids and Surfaces B: Biointerfaces 117 (May 1, 2014): 248\u201351. https:\/\/doi.org\/10.1016\/j.colsurfb.2014.02.033.<\/p>\n<p>22. Zasedatelev, Anton, Vitaly Krasovskii, Tatiana Dubinina, and Denis Krichevsky. \u201cExciton-Plasmon Interaction in Core\/Shell Spherical Nanoparticles.\u201d In Proceedings of SPIE &#8211; The International Society for Optical Engineering, edited by Allan D. Boardman, 91633E, 2014. https:\/\/doi.org\/10.1117\/12.2063344.<\/p>\n<h4>2013 \u0433\u043e\u0434<\/h4>\n<p>1. Akmalov, A. E., A. S. Bogdanov, G. E. Kotkovskii, E. M. Spitsyn, A. V. Sychev, A. N. Perederii, and A. A. Chistyakov. \u201cA Laser Desorption Ion-Mobility Increment Spectrometer for Detection of Ultralow Concentrations of Nitro Compounds.\u201d Instruments and Experimental Techniques 56, no. 3 (June 8, 2013): 309\u201316. https:\/\/doi.org\/10.1134\/S0020441213030159.<\/p>\n<p>2. Akmalov, A. E., A. S. Bogdanov, G. E. Kotkovskii, E. M. Spitsyn, A. V. Sychev, A. N. Perederii, and A. A. Chistyakov. \u201cA Laser Desorption Ion-Mobility Increment Spectrometer for Detection of Ultralow Concentrations of Nitro Compounds.\u201d Instruments and Experimental Techniques 56, no. 3 (May 8, 2013): 309\u201316. https:\/\/doi.org\/10.1134\/S0020441213030159.<\/p>\n<p>3. Dayneko, Sergey, Alexey Tameev, Marine Tedoradze, Igor Martynov, Mikhail Artemyev, Igor Nabiev, and Alexander Chistyakov. \u201cHybrid Heterostructures Based on Aromatic Polyimide and Semiconductor CdSe Quantum Dots for Photovoltaic Applications.\u201d Applied Physics Letters 103, no. 6 (2013): 063302. https:\/\/doi.org\/10.1063\/1.4817722.<\/p>\n<p>4. Dayneko, Sergey, Alexey Tameev, Marine Tedoradze, Igor Martynov, Mikhail Artemyev, Igor Nabiev, and Alexander Chistyakov. \u201cHybrid Heterostructures Based on Aromatic Polyimide and Semiconductor CdSe Quantum Dots for Photovoltaic Applications.\u201d Applied Physics Letters 103, no. 6 (August 5, 2013): 063302. https:\/\/doi.org\/10.1063\/1.4817722.<\/p>\n<h4>2012 \u0433\u043e\u0434<\/h4>\n<p>1. Dayneko, Sergey, Marine Tedoradze, Mikhail Artemyev, Igor Nabiev, and Alexander A. Chistyakov. \u201cEngineering of Hybrid Heterostructures from Organic Semiconductors and Quantum Dots for Advanced Photovoltaic Applications.\u201d edited by Loucas Tsakalakos, 84710W, 2012. https:\/\/doi.org\/10.1117\/12.929573.<\/p>\n<p>2. Dayneko, Sergey, Marine Tedoradze, Mikhail Artemyev, Igor Nabiev, and Alexander A. Chistyakov. \u201cEngineering of Hybrid Heterostructures from Organic Semiconductors and Quantum Dots for Advanced Photovoltaic Applications.\u201d edited by Loucas Tsakalakos, 84710W, 2012. https:\/\/doi.org\/10.1117\/12.929573.<\/p>\n<p>3. Kotkovskiy, Gennady E., Yury A. Kuzishchin, Igor L. Martynov, Alexander A. Chistyakov, and Igor Nabiev. \u201cThe Photophysics of Porous Silicon: Technological and Biomedical Implications.\u201d Physical Chemistry Chemical Physics 14, no. 40 (2012): 13890. https:\/\/doi.org\/10.1039\/c2cp42019h.<\/p>\n<p>4. Kotkovskiy, Gennady E, Yury A Kuzishchin, Igor L Martynov, Alexander A Chistyakov, and Igor Nabiev. \u201cThe Photophysics of Porous Silicon: Technological and Biomedical Implications.\u201d Physical Chemistry Chemical Physics 14, no. 40 (October 28, 2012): 13890. https:\/\/doi.org\/10.1039\/c2cp42019h.<\/p>\n<h4>2011 \u0433\u043e\u0434<\/h4>\n<p>1. Kotkovskii, G. E., A. V. Sychev, A. V. Tugaenko, and A. A. Chistyakov. \u201cA Laser Spectrometer of Field-Asymmetric Ion Mobility.\u201d Instruments and Experimental Techniques 54, no. 2 (March 20, 2011): 256\u201361. https:\/\/doi.org\/10.1134\/S0020441211020199.<\/p>\n<p>2. Martynov, I. L., V. A. Karavanskii, G. E. Kotkovskii, Yu. a. Kuzishchin, a. S. Tsybin, and a. a. Chistyakov. \u201cIon Mobility Spectrometer with Ion Source Based on Laser-Irradiated Porous Silicon.\u201d Technical Physics Letters 37, no. 1 (January 18, 2011): 15\u201318. https:\/\/doi.org\/10.1134\/S1063785011010299.<\/p>\n<p>3. Martynov, I. L., V. A. Karavanskii, G. E. Kotkovskii, Yu. A. Kuzishchin, A. S. Tsybin, and A. A. Chistyakov. \u201cIon Mobility Spectrometer with Ion Source Based on Laser-Irradiated Porous Silicon.\u201d Technical Physics Letters 37, no. 1 (January 18, 2011): 15\u201318. https:\/\/doi.org\/10.1134\/S1063785011010299.<\/p>\n<h4>2010 \u0433\u043e\u0434<\/h4>\n<p>1. Andreev, S A, N P Andreeva, M S Barashkov, Valerii V Badikov, V K Demkin, A K Don, V M Epikhin, et al. \u201cInvestigation into the Ways of Tuning Parametric Oscillators of Visible and IR Ranges.\u201d Quantum Electronics 40, no. 4 (June 23, 2010): 288\u201395. https:\/\/doi.org\/10.1070\/QE2010v040n04ABEH014237.<\/p>\n<p>2. Egorysheva, A. V., V. D. Volodin, A. A. Chistyakov, Yu. A. Kuzishchin, V. M. Skorikov, and T. D. Dudkina. \u201cLuminescence of Europium-Doped BaO-Bi2O3-B2O3 Glasses.\u201d Inorganic Materials 46, no. 12 (December 25, 2010): 1384\u201390. https:\/\/doi.org\/10.1134\/S0020168510120204.<\/p>\n<p>3. Kotkovskii, G. E., A. V. Tugaenko, and A. A. Chistyakov. \u201cNegative Ion Formation in Laser Ion Mobility Increment Spectrometer.\u201d Technical Physics Letters 36, no. 3 (March 9, 2010): 276\u201378. https:\/\/doi.org\/10.1134\/S1063785010030223.<\/p>\n<p>4. Veber, A. A., G. E. Kotkovskii, I. L. Martynov, and A. A. Chistyakov. \u201cFormation of Anions of Nitroaromatic Compounds in Gases during UV Laser Irradiation.\u201d Russian Journal of Physical Chemistry B 4, no. 4 (August 4, 2010): 548\u201356. https:\/\/doi.org\/10.1134\/S1990793110040044.<\/p>\n<p>5. Veber, A. A., G. E. Kotkovskii, I. L. Martynov, and A. A. Chistyakov. \u201cFormation of Anions of Nitroaromatic Compounds in Gases during UV Laser Irradiation.\u201d Russian Journal of Physical Chemistry B 4, no. 4 (November 4, 2010): 548\u201356. https:\/\/doi.org\/10.1134\/S1990793110040044.<\/p>\n<h4>2009 \u0433\u043e\u0434<\/h4>\n<p>1. Chistyakov, A. A., S. V. Dayneko, V. A. Oleinikov, A. R. Tameev, M. G. Tedoradze, K. V. Zakharchenko, and V. I. Zolotarevskiy. \u201cLuminescence and Photovoltaic Effect of Multilayer Structures Based on CdSe and CdSe\/ZnS Nanoparticles Embedded into Organic Semiconductors.\u201d edited by Achim Wixforth, 73640G, 2009. https:\/\/doi.org\/10.1117\/12.821326.<\/p>\n<p>2. Chistyakov, A.A., S.V. Dayneko, V.A. Kolesnikov, K.E. Mochalov, V.A. Oleinikov, M.G. Tedoradze, and K.V. Zakharchenko. \u201cLaser-Induced Luminescence of Multilayer Structures Based on Polyimides and CdSe and CdSe\/ZnS Nanocrystals.\u201d Laser Physics Letters 6, no. 10 (October 2009): 718\u201322. https:\/\/doi.org\/10.1002\/lapl.200910061.<\/p>\n<p>3. Kotkovskii, G. E., I. L. Martynov, V. V. Novikova, and A. A. Chistyakov. \u201cA Laser Ion-Mobility Spectrometer.\u201d Instruments and Experimental Techniques 52, no. 2 (May 1, 2009): 253\u201359. https:\/\/doi.org\/10.1134\/S0020441209020249.<\/p>\n<p>4. Kotkovskii, G. E., I. L. Martynov, V. V. Novikova, and A. A. Chistyakov. \u201cA Laser Ion-Mobility Spectrometer.\u201d Instruments and Experimental Techniques 52, no. 2 (March 1, 2009): 253\u201359. https:\/\/doi.org\/10.1134\/S0020441209020249.<\/p>\n<h4>2008 \u0433\u043e\u0434<\/h4>\n<p>1. Chistyakov, A. A., I. L. Martynov, K. E. Mochalov, V. A. Oleinikov, and K. V. Zaharchenko. \u201cLaser-Induced Photoprocesses in Solutions and Films of the CdSe\/ZnS Nanoparticles.\u201d Laser Physics 18, no. 8 (August 10, 2008): 925\u201338. https:\/\/doi.org\/10.1134\/S1054660X0808001X.<\/p>\n<h4>2007 \u0433\u043e\u0434<\/h4>\n<p>1. Artemyev, M. V., A. A. Chistyakov, S. V. Daineko, I. L. Martynov, I. R. Nabiev, V. A. Oleinikov, and K. V. Zaharchenko. \u201cAnti-Stokes Photoluminescence of CdSe\/ZnS Nanoparticles in Solution and Condensed Phas.\u201d In Anti-Stokes Photoluminescence of CdSe\/ZnS Nanoparticles in Solution and Condensed Phas, edited by Leonid N. Soms, 6613:66130L\u201366130L\u201310, 2007. https:\/\/doi.org\/10.1117\/12.740015.<\/p>\n<p>2. Artemyev, M. V., A. A. Chistyakov, S. V. Daineko, I. L. Martynov, I. R. Nabiev, V. A. Oleinikov, and K. V. Zaharchenko. \u201cLaser Induced Luminescence of Dense Films of CdSe\/ZnS Nanoparticles.\u201d In Proceedings of SPIE &#8211; The International Society for Optical Engineering, edited by Leonid N. Soms, 6613:66130M\u201366130M\u20138, 2007. https:\/\/doi.org\/10.1117\/12.740018.<\/p>\n<h4>2006 \u0433\u043e\u0434<\/h4>\n<p>1. Chistyakov, A. A., I. L. Martynov, K. E. Mochalov, V. A. Oleinikov, S. V. Sizova, E. A. Ustinovich, and K. V. Zakharchenko. \u201cInteraction of CdSe\/ZnS Core-Shell Semiconductor Nanocrystals in Solid Thin Films.\u201d Laser Physics 16, no. 12 (December 2006): 1625\u201332. https:\/\/doi.org\/10.1134\/S1054660X06120061.<\/p>\n\n\n<p><\/p>\n","protected":false},"excerpt":{"rendered":"<p>\u041f\u0443\u0431\u043b\u0438\u043a\u0430\u0446\u0438\u0438 \u0441\u043e\u0442\u0440\u0443\u0434\u043d\u0438\u043a\u043e\u0432 \u043a\u0430\u0444\u0435\u0434\u0440\u044b, \u0446\u0438\u0442\u0438\u0440\u0443\u0435\u043c\u044b\u0435 \u0432 \u043d\u0430\u0443\u0447\u043d\u044b\u0445 \u0431\u0430\u0437\u0430\u0445 Scopus \u0438\/\u0438\u043b\u0438 Web of science 2022 \u0433\u043e\u0434 [1]\u00a0 \u00a0 \u00a0Kostarev V.A., Kotkovskii G.E., Chistyakov A.A., Akmalov A.E. Detection of explosives in vapor phase by field asymmetric ion mobility spectrometry with dopant-assisted laser ionization. Talanta, 2022, Volume 245,123414,Q1. [2]\u00a0 \u00a0 \u00a0Kostarev V.A., Kotkovskii G.E., Chistyakov A.A., Akmalov A.E. 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