Content of issue 05, volume 34, 2021

1. Vasil’chenko S. S., Kassi S., Mondеlain D., Campargue A. High resolution laser spectroscopy of the ozone molecule at the dissociation threshold. P. 315–322
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Vasil’chenko S. S., Kassi S., Mondеlain D., Campargue A. High resolution laser spectroscopy of the ozone molecule at the dissociation threshold. // Optika Atmosfery i Okeana. 2021. V. 34. No. 05. P. 315–322. DOI: 10.15372/AOO20210501 [in Russian].
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Vasilchenko S.S., Kassi S., Mondelain D. and Campargue A. High-Resolution Laser Spectroscopy of the Ozone Molecule at the Dissociation Threshold // Atmospheric and Oceanic Optics, 2021, V. 34. No. 05. pp. 373–380.
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2. Lavrentieva N. N., Dudaryonok A. S. Calculation of self- and air-broadening coefficients of nitrogen dioxide lines. P. 323–328
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Lavrentieva N. N., Dudaryonok A. S. Calculation of self- and air-broadening coefficients of nitrogen dioxide lines. // Optika Atmosfery i Okeana. 2021. V. 34. No. 05. P. 323–328. DOI: 10.15372/AOO20210502 [in Russian].
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3. Tanichev A. S., Petrov D. V., Matrosov I. I., Sharybkina K. K. Effect of helium on the Raman spectrum of methane in the range 2500–3300 cm-1. P. 329–333
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Tanichev A. S., Petrov D. V., Matrosov I. I., Sharybkina K. K. Effect of helium on the Raman spectrum of methane in the range 2500–3300 cm-1. // Optika Atmosfery i Okeana. 2021. V. 34. No. 05. P. 329–333. DOI: 10.15372/AOO20210503 [in Russian].
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Tanichev A.S., Petrov D.V., Matrosov I.I. and Sharybkina K.K. Effect of Helium on the Raman Spectrum of Methane in the 2500–3300 cm−1 Range // Atmospheric and Oceanic Optics, 2021, V. 34. No. 05. pp. 395–399.
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4. Kapitanov V. A., Osipov K. Yu., Protasevich A. E., Ponomarev Yu. N., Ponurovskii Ya. Ya. Dicke narrowing, speed dependence and line mixing of self-broadened CO2 absorption lines in the 30013 ← 00001 band. Measurements and line shape testing. P. 334–342
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Kapitanov V. A., Osipov K. Yu., Protasevich A. E., Ponomarev Yu. N., Ponurovskii Ya. Ya. Dicke narrowing, speed dependence and line mixing of self-broadened CO2 absorption lines in the 30013 ← 00001 band. Measurements and line shape testing. // Optika Atmosfery i Okeana. 2021. V. 34. No. 05. P. 334–342. DOI: 10.15372/AOO20210504 [in Russian].
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Kapitanov V.A., Osipov K.Yu., Protasevich A.E., Ponomarev Yu.N. and Ponurovskii Ya.Ya. Dicke Narrowing, Pressure Dependence, and Mixing of Self-Broadened CO2 Absorption Lines in the 30013 ← 00001 Band: Measurements and Line Profile Testing // Atmospheric and Oceanic Optics, 2021, V. 34. No. 05. pp. 381–389.
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5. Lavrinov V. V., Lavrinova L. N. Optimization of lens raster parameters in a Shack–Hartmann wavefront sensor. P. 343–351
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Lavrinov V. V., Lavrinova L. N. Optimization of lens raster parameters in a Shack–Hartmann wavefront sensor. // Optika Atmosfery i Okeana. 2021. V. 34. No. 05. P. 343–351. DOI: 10.15372/AOO20210505 [in Russian].
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6. Bukin O. A., Maior A. Yu., Proschenko D. Yu., Golik S. S., Lisitsa V. V., Korovetskiy D. A., Ilin A. A. Comparison of methods for multielement analysis of the composition of water aerosol based on spectral analysis of laser plasma. P. 352–357
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Bukin O. A., Maior A. Yu., Proschenko D. Yu., Golik S. S., Lisitsa V. V., Korovetskiy D. A., Ilin A. A. Comparison of methods for multielement analysis of the composition of water aerosol based on spectral analysis of laser plasma. // Optika Atmosfery i Okeana. 2021. V. 34. No. 05. P. 352–357. DOI: 10.15372/AOO20210506 [in Russian].
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Bukin O.A., Mayor A.Yu., Proschenko D.Yu., Golik S.S., Lisitsa V.V., Korovetskiy D.A. and IlyiA.A. Comparison of Techniques for Multielement Analysis of Water Aerosol Composition Based on the Spectral Analysis of a Laser Plasma // Atmospheric and Oceanic Optics, 2021, V. 34. No. 05. pp. 406–410.
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7. Nevzorov A. V., Bazhenov O. E., El'nikov A. V., Loginov V. A. Comparison of time behaviors of integrated aerosol content in the stratosphere and total ozone content. P. 358–363
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Nevzorov A. V., Bazhenov O. E., El'nikov A. V., Loginov V. A. Comparison of time behaviors of integrated aerosol content in the stratosphere and total ozone content. // Optika Atmosfery i Okeana. 2021. V. 34. No. 05. P. 358–363. DOI: 10.15372/AOO20210507 [in Russian].
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Nevzorov A.V., Bazhenov O.E., Elnikov A.V. and Loginov V.A. Comparison of Time Series of Integrated Aerosol Content in the Stratosphere and Total Ozone Content // Atmospheric and Oceanic Optics, 2021, V. 34. No. 05. pp. 411–416.
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8. Sivtseva V. I., Ammosov P. P., Gavrileva G. A., Koltovskoi I. I. Atmospheric temperature from AURA (MLS) satellite and OH (3-1) measurements in Maimaga. P. 364–368
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Sivtseva V. I., Ammosov P. P., Gavrileva G. A., Koltovskoi I. I. Atmospheric temperature from AURA (MLS) satellite and OH (3-1) measurements in Maimaga. // Optika Atmosfery i Okeana. 2021. V. 34. No. 05. P. 364–368. DOI: 10.15372/AOO20210508 [in Russian].
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Sivtseva V.I., Ammosov P.P., Gavrilyeva G.A. and Koltovskoi I.I. Atmospheric Temperature from the Aura (MLS) Satellite and OH (3-1) Measurements in Maimaga // Atmospheric and Oceanic Optics, 2021, V. 34. No. 05. pp. 417–421.
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9. Tartakovsky V. A., Cheredko N. N., Maksimov V. G. Emergent properties of the climate system. Derivatives of the mean annual temperature at meteorological stations in the Northern Hemisphere.. P. 369–373
Bibliographic reference:
Tartakovsky V. A., Cheredko N. N., Maksimov V. G. Emergent properties of the climate system. Derivatives of the mean annual temperature at meteorological stations in the Northern Hemisphere.. // Optika Atmosfery i Okeana. 2021. V. 34. No. 05. P. 369–373. DOI: 10.15372/AOO20210509 [in Russian].
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Tartakovsky V.A., Cheredko N.N. and Maksimov V.G. Emergent Properties of a Climate System: Derivatives of Annual Average Temperature at Weather Stations of the Northern Hemisphere // Atmospheric and Oceanic Optics, 2021, V. 34. No. 04. pp. 341–346.
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10. Nerobelov G. M., Timofeev Yu. M. Estimates of CO2 exchange over the water surface near the St. Petersburg metropolitan area. P. 374–379
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Nerobelov G. M., Timofeev Yu. M. Estimates of CO2 exchange over the water surface near the St. Petersburg metropolitan area. // Optika Atmosfery i Okeana. 2021. V. 34. No. 05. P. 374–379. DOI: 10.15372/AOO20210510 [in Russian].
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Nerobelov G.M. and Timofeyev Yu.M. Estimates of CO2 Emissions and Uptake by the Water Surface near St. Petersburg Megalopolis // Atmospheric and Oceanic Optics, 2021, V. 34. No. 05. pp. 422–427.
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11. Filimonov P. A., Ivanov S. E., Gorodnichev V. A., Belov M. L., Fedotov Yu. V. Measurements of wind speed and direction with an aerosol UV lidar. P. 380–384
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Filimonov P. A., Ivanov S. E., Gorodnichev V. A., Belov M. L., Fedotov Yu. V. Measurements of wind speed and direction with an aerosol UV lidar. // Optika Atmosfery i Okeana. 2021. V. 34. No. 05. P. 380–384. DOI: 10.15372/AOO20210511 [in Russian].
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Filimonov P.A., Ivanov S.E., Gorodnichev V.A., Belov M.L. and Fedotov Yu.V. Measurements of Wind Speed and Direction with an Aerosol UV Lidar // Atmospheric and Oceanic Optics, 2021, V. 34. No. 05. pp. 443–446.
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12. Shikhovtsev A. Yu., Lukin V. P., Kovadlo P. G. The development of the adaptive optics systems for the ground-based solar telescopes. P. 385–392
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Shikhovtsev A. Yu., Lukin V. P., Kovadlo P. G. The development of the adaptive optics systems for the ground-based solar telescopes. // Optika Atmosfery i Okeana. 2021. V. 34. No. 05. P. 385–392. DOI: 10.15372/AOO20210512 [in Russian].
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Shikhovtsev A.Yu., Lukin V.P., Kovadlo P.G. Development of Adaptive-Optics Systems for Ground-Based Solar Telescopes // Atmospheric and Oceanic Optics, 2022, V. 35. No. 03. pp. 189–196.
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