Content of issue 08, volume 35, 2022
Bibliographic reference
Ponomarev Yu. N., Cherepanov V. N., Nasibulin R. T., Simonova A. A. Estimation of the orientation type of H2O molecules in the adsorbed layer on the surface of SiO2 airgel nanopores . // Optika Atmosfery i Okeana. 2022. V. 35. No. 08. P. 603–607. DOI: 10.15372/AOO20220801 [in Russian].
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Ponomarev Yu.N., Cherepanov V.N., Nasibulin R.T., Simonova A.A. Estimation of H2O Molecule Orientation Type in the Adsorbed Layer on a SiO2 Aerogel Nanopore Surface // Atmospheric and Oceanic Optics, 2022, V. 35. No. 06. pp. 621–625.
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Dеichuli V. M., Petrova T. M., Solodov A. A., Solodov A. M. Broadening and shift coefficients of H2O absorption lines induced by CO2 pressure in the 2.7 μm spectral region . // Optika Atmosfery i Okeana. 2022. V. 35. No. 08. P. 608–612. DOI: 10.15372/AOO20220802 [in Russian].
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Deichuli V.M., Petrova T.M., Solodov A.A., Solodov A.M. Broadening and Shift Coefficients of Water Absorption Lines Induced by Carbon Dioxide Pressure near 2.7 μm // Atmospheric and Oceanic Optics, 2022, V. 35. No. 06. pp. 634–638.
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Bobrovnikov S. M., Gorlov E. V., Zharkov V. I., Safyanov A. D. Laser-induced fluorescence of PO-photofragments of organophosphates . // Optika Atmosfery i Okeana. 2022. V. 35. No. 08. P. 613–618. DOI: 10.15372/AOO20220803 [in Russian].
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Bobrovnikov S.M., Gorlov E.V., Zharkov V.I., Safyanov A.D. Laser-induced Fluorescence of PO Photofragments of Organophosphates // Atmospheric and Oceanic Optics, 2022, V. 35. No. 06. pp. 639–644.
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Serdyukov V. I., Sinitsa L. N., Emelyanov N. M. Study of the R-branch of the 3ν3 band of 13CH4 in the 1 μm region . // Optika Atmosfery i Okeana. 2022. V. 35. No. 08. P. 619–625. DOI: 10.15372/AOO20220804 [in Russian].
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Serdyukov V.I., Sinitsa L.N., Emelyanov N M. Study of the R-Branch of the 3ν3 Band of 13CH4 in the 1-μm Region // Atmospheric and Oceanic Optics, 2023, V. 36. No. 02. pp. 105–112.
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Gurentsov E. V., Eremin A. V., Kolotushkin R. N. The choice of optical properties of soot particles for description of solar radiation absorption in the atmosphere and on the Earth's surface . // Optika Atmosfery i Okeana. 2022. V. 35. No. 08. P. 626–631. DOI: 10.15372/AOO20220805 [in Russian].
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Gurentsov E.V., Eremin A.V., Kolotushkin R.N. Choice of Optical Properties of Soot Particles for Description of Solar Radiation Absorption in the Atmosphere and on the Earth’s Surface // Atmospheric and Oceanic Optics, 2022, V. 35. No. 06. pp. 645–650.
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Khalifaeva Sh. Kh., Abdullaev S. F., Maslov V. A., Rakhmatov M. N. Variations in the concentrations of heavy metals in dust aerosol in the southern and central Tajikistan . // Optika Atmosfery i Okeana. 2022. V. 35. No. 08. P. 632–637. DOI: 10.15372/AOO20220806 [in Russian].
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Shul’ga T. Ya., Verzhevskaiia L. V., Medvedeva A. V., Svishcheva I. A. Assessment of the distribution of suspended matter according to bio-optical indices, taking into account the influence of hydrometeorological factors in the coastal zone of the Crimea . // Optika Atmosfery i Okeana. 2022. V. 35. No. 08. P. 638–644. DOI: 10.15372/AOO20220807 [in Russian].
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Shul’ga T.Ya., Verzhevskaia L.V., Svishcheva I.A. Estimation of the Distribution of Suspended Matter by Biooptical Indices Taking into Account Hydrometeorological Factors in the Coastal Zone of Crimea // Atmospheric and Oceanic Optics, 2022, V. 35. No. 06. pp. 713–720.
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Dudorova N. V., Belan B. D. Relationship between particulate air pollution and mortality: the case of Tomsk, Russia . // Optika Atmosfery i Okeana. 2022. V. 35. No. 08. P. 645–654. DOI: 10.15372/AOO20220808 [in Russian].
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Dudorova N.V., Belan B.D. The Relationship between Particulate Air Pollution and Mortality: The Case of Tomsk, Russia // Atmospheric and Oceanic Optics, 2022, V. 35. No. 06. pp. 694–703.
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Stepanov E. V., Andreev V. V., Konovaltseva L. V., Kasoev S. G. Surface ozone over Moscow during the COVID-19 pandemic . // Optika Atmosfery i Okeana. 2022. V. 35. No. 08. P. 655–663. DOI: 10.15372/AOO20220809 [in Russian].
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Stepanov E.V., Andreev V.V., Konovaltseva L.V., Kasoev S.G. Surface Ozone in the Atmosphere of Moscow during the COVID-19 Pandemic // Atmospheric and Oceanic Optics, 2022, V. 35. No. 06. pp. 732–740.
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Shishko V. A., Timofeev D. N., Konoshonkin A. V., Kustova N. V., Kan N., Tkachev I. V., Masuda K., Ishimoto H., Okamoto H., Borovoy A. G. Backscattering properties of optical and electromagnetic waves with remote sensing of cirrus clouds by 0.355 mm polarizing lidar and 94 GHz radar . // Optika Atmosfery i Okeana. 2022. V. 35. No. 08. P. 664–669. DOI: 10.15372/AOO20220810 [in Russian].
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Shishko V.A., Timofeev D.N., Konoshonkin A.V., Kustova N.V., Kan N., Tkachev I.V., Masuda K., Ishimoto H., Okamoto H., Borovoi A.G. Backscattering Characteristics of Optical and Electromagnetic Waves in Joint Sensing of Cirrus Clouds by a Polarizing Lidar (0.355 µm) and a 94-GHz Radar // Atmospheric and Oceanic Optics, 2022, V. 35. No. 06. pp. 775–781.
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Chubarova N. E., Rozental V. A., Zhdanova E. Yu., Poliukhov A. A. New radiation complex at the Moscow State University Meteorological Observatory of the BSRN standard: methodological aspects and first measurement results . // Optika Atmosfery i Okeana. 2022. V. 35. No. 08. P. 670–678. DOI: 10.15372/AOO20220811 [in Russian].
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Geints Yu. E., Panina E. K. Optimal light focusing by a Fresnel mesowavelength phase plate with stepped zone profile . // Optika Atmosfery i Okeana. 2022. V. 35. No. 08. P. 679–685. DOI: 10.15372/AOO20220812 [in Russian].
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Geints Yu.E., Panina E. K. Optimal Light Focusing with a Fresnel Mesowavelength Phase Plate with Stepped Zone Profile // Atmospheric and Oceanic Optics, 2022, V. 35. No. 06. pp. 817–823.
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Domysheva V. M., Panchenko M. V., Pestunov D. A., Sakirko M. V., Shamrin A. M. Estimation of primary production in the water of the coastal zone of the lake Baikal on the basis of the daily variations in CO2 concentration in different seasons of 2005–2021 . // Optika Atmosfery i Okeana. 2022. V. 35. No. 08. P. 686–694. DOI: 10.15372/AOO20220813 [in Russian].
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Domysheva V.M., Panchenko M.V., Pestunov D.A., Sakirko M.V., Shamrin A.M. Estimation of Primary Production in the Water of the Coastal Zone of Lake Baikal Based on Daily Variations in CO2 Concentration in Different Seasons of 2005–2021 // Atmospheric and Oceanic Optics, 2023, V. 36. No. 01. pp. 92–100.
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