Content of issue 11, volume 30, 2017

1. Aksenov V. P., Dudorov V. V., Kolosov V. V., Filimonov G. A. Generation of laser vortex beams with zero orbital angular momentum and nonzero topological charge. P. 905–909
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Aksenov V. P., Dudorov V. V., Kolosov V. V., Filimonov G. A. Generation of laser vortex beams with zero orbital angular momentum and nonzero topological charge. // Optika Atmosfery i Okeana. 2017. V. 30. No. 11. P. 905–909. DOI: 10.15372/AOO20171101 [in Russian].
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2. Apeksimov D. V., Zemlyanov A. A., Iglakova A. N., Kabanov A. M., Kuchinskaya O. A., Matvienko G. G., Oshlakov V. K., Petrov A. V., Sokolova E. B. Localized light structures with high intensity at multiple filamentation of femtosecond pulses of a Ti:Sapphire laser along an air path. P. 910–914
Bibliographic reference:
Apeksimov D. V., Zemlyanov A. A., Iglakova A. N., Kabanov A. M., Kuchinskaya O. A., Matvienko G. G., Oshlakov V. K., Petrov A. V., Sokolova E. B. Localized light structures with high intensity at multiple filamentation of femtosecond pulses of a Ti:Sapphire laser along an air path. // Optika Atmosfery i Okeana. 2017. V. 30. No. 11. P. 910–914. DOI: 10.15372/AOO20171102 [in Russian].
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Apeksimov D.V., Zemlyanov A.A., Iglakova A.N., Kabanov A.M., Kuchinskaya O.I., Matvienko G.G., Oshlakov V.K., Petrov A.V. and Sokolova E.B. Localized High-Intensity Light Structures during Multiple Filamentation of Ti:Sapphire-Laser Femtosecond Pulses along an Air Path. // Atmospheric and Oceanic Optics, 2018, V. 31. No. 02. pp. 107–111.
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3. Russkova T. V. Monte Carlo simulation of solar radiative transfer in the cloudy atmosphere using graphics processor and NVIDIA CUDA technology. P. 915–926
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Russkova T. V. Monte Carlo simulation of solar radiative transfer in the cloudy atmosphere using graphics processor and NVIDIA CUDA technology. // Optika Atmosfery i Okeana. 2017. V. 30. No. 11. P. 915–926. DOI: 10.15372/AOO20171103 [in Russian].
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Russkova T.V. Monte Carlo Simulation of the Solar Radiation Transfer in a Cloudy Atmosphere with the Use of Graphic Processor and NVIDIA CUDA Technology. // Atmospheric and Oceanic Optics, 2018, V. 31. No. 02. pp. 119–130.
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4. Zimovaya A. V., Tarasenkov M. V., Belov V. V. Influence of radiation polarization on reconstruction of the Earth surface reflection coefficient from satellite data in the visible wavelength range. P. 927–932
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Zimovaya A. V., Tarasenkov M. V., Belov V. V. Influence of radiation polarization on reconstruction of the Earth surface reflection coefficient from satellite data in the visible wavelength range. // Optika Atmosfery i Okeana. 2017. V. 30. No. 11. P. 927–932. DOI: 10.15372/AOO20171104 [in Russian].
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Zimovaya A.V., Tarasenkov M.V. and Belov V.V. Radiation Polarization Effect on the Retrieval of the Earth’s Surface Reflection Coefficient from Satellite Data in the Visible Wavelength Range. // Atmospheric and Oceanic Optics, 2018, V. 31. No. 02. pp. 131–136.
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5. Starikov V. I., Petrova T. M., Solodov A. M., Solodov A. A., Dеichuli V. M. Effective atom-atom potentials for H2O–He and H2O–Ar systems. P. 933–940
Bibliographic reference:
Starikov V. I., Petrova T. M., Solodov A. M., Solodov A. A., Dеichuli V. M. Effective atom-atom potentials for H2O–He and H2O–Ar systems. // Optika Atmosfery i Okeana. 2017. V. 30. No. 11. P. 933–940. DOI: 10.15372/AOO20171105 [in Russian].
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Starikov V.I., Petrova T.M., Solodov A.M., Solodov A.A. and Deichuli V.M. Effective Atom-Atom Potentials for H2O–He and H2O–Ar Systems. // Atmospheric and Oceanic Optics, 2018, V. 31. No. 02. pp. 137–145.
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6. Ageev B. G., Gruzdev A. N., Ponomarev Yu. N., Sapozhnikova V. A. Variations of residual СО2 and total pressure in conifer woody roots. P. 941–947
Bibliographic reference:
Ageev B. G., Gruzdev A. N., Ponomarev Yu. N., Sapozhnikova V. A. Variations of residual СО2 and total pressure in conifer woody roots. // Optika Atmosfery i Okeana. 2017. V. 30. No. 11. P. 941–947. DOI: 10.15372/AOO20171106 [in Russian].
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Ageev B.G., Gruzgev A.N., Ponomarev Yu.N. and Sapozhnikova V.A. Variations of Residual CO2 and Pressure in Conifer Woody Roots. // Atmospheric and Oceanic Optics, 2018, V. 31. No. 02. pp. 146–152.
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7. Sakerin S. M., Kabanov D. M., Radionov V. F., Chernov D. G., Turchinovich Yu. S., Lubo-Lesnichenko K. E., Prakhov A. N. Generalization of results of measurements of atmospheric aerosol optical depth on Spitsbergen Archipelago in 2011–2016. P. 948–955
Bibliographic reference:
Sakerin S. M., Kabanov D. M., Radionov V. F., Chernov D. G., Turchinovich Yu. S., Lubo-Lesnichenko K. E., Prakhov A. N. Generalization of results of measurements of atmospheric aerosol optical depth on Spitsbergen Archipelago in 2011–2016. // Optika Atmosfery i Okeana. 2017. V. 30. No. 11. P. 948–955. DOI: 10.15372/AOO20171107 [in Russian].
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Sakerin S.M., Kabanov D.M., Radionov V.F., Chernov D.G., Turchinovich Yu.S., Lubo-Lesnichenko K.E. and Prakhov A.N. Generalization of Results of Atmospheric Aerosol Optical Depth Measurements on Spitsbergen Archipelago in 2011–2016. // Atmospheric and Oceanic Optics, 2018, V. 31. No. 02. pp. 163–170.
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8. Starodymova D. P., Vinogradova A. A., Shevchenko V. P., Zakharova E. V., Sivonen V. V., Sivonen V. P. Elemental composition of surface aerosol on the north-western Kandalaksha Bay coast of the White Sea. P. 956–961
Bibliographic reference:
Starodymova D. P., Vinogradova A. A., Shevchenko V. P., Zakharova E. V., Sivonen V. V., Sivonen V. P. Elemental composition of surface aerosol on the north-western Kandalaksha Bay coast of the White Sea. // Optika Atmosfery i Okeana. 2017. V. 30. No. 11. P. 956–961. DOI: 10.15372/AOO20171108 [in Russian].
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Starodymova D.P., Vinogradova A.A., Shevchenko V.P., Zakharova E.V., Sivonen V.V. and Sivonen V.P. Elemental Composition of Near-Ground Aerosol Near the Northwestern Coast of Kandalaksha Bay of the White Sea. // Atmospheric and Oceanic Optics, 2018, V. 31. No. 02. pp. 181–186.
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9. Semutnikova E. G., Gorchakov G. I., Sitnov S. A., Kopeikin V. M., Karpov A. V., Gorchakova I. A., Ponomareva T. Ta., Isakov A. A., Gushchin R. A., Dazenko O. I., Kurbatov G. A., Kuznetsov G. A. Siberian smoke haze over European part of Russia in July 2016. Air pollution and radiative impact. P. 962–970
Bibliographic reference:
Semutnikova E. G., Gorchakov G. I., Sitnov S. A., Kopeikin V. M., Karpov A. V., Gorchakova I. A., Ponomareva T. Ta., Isakov A. A., Gushchin R. A., Dazenko O. I., Kurbatov G. A., Kuznetsov G. A. Siberian smoke haze over European part of Russia in July 2016. Air pollution and radiative impact. // Optika Atmosfery i Okeana. 2017. V. 30. No. 11. P. 962–970. DOI: 10.15372/AOO20171109 [in Russian].
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Semoutnikova E.G., Gorchakov G.I., Sitnov S.A., Kopeikin V.M., Karpov A.V., Gorchakova I.A., Ponomareva T.Ya., Isakov A.A., Gushchin R.A., Datsenko O.I., Kurbatov G.A. and Kuznetsov G.A. Siberian Smoke Haze over European Territory of Russia in July 2016: Atmospheric Pollution and Radiative Effects. // Atmospheric and Oceanic Optics, 2018, V. 31. No. 02. pp. 171–180.
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10. Belan B. D., Savkin D. E., Tolmachev G. N. Generation of ozone in the surface air layer versus air temperature. P. 971–979
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Belan B. D., Savkin D. E., Tolmachev G. N. Generation of ozone in the surface air layer versus air temperature. // Optika Atmosfery i Okeana. 2017. V. 30. No. 11. P. 971–979. DOI: 10.15372/AOO20171110 [in Russian].
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Belan B.D., Savkin D.E. and Tolmachev G.N. Air-Temperature Dependence of the Ozone Generation Rate in the Surface Air Layer. // Atmospheric and Oceanic Optics, 2018, V. 31. No. 02. pp. 187–196.
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11. Yakshina D. F., Golubeva E. N. The study of the subsurface temperature maximum formation in the Canada basin of the Arctic Ocean. P. 980–985
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Yakshina D. F., Golubeva E. N. The study of the subsurface temperature maximum formation in the Canada basin of the Arctic Ocean. // Optika Atmosfery i Okeana. 2017. V. 30. No. 11. P. 980–985. DOI: 10.15372/AOO20171111 [in Russian].
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12. Mikhalev A. V. The [OI] 557.7 nm airglow emission during El Niño/La Niña extreme events in solar cycles 23–24. P. 986–989
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Mikhalev A. V. The [OI] 557.7 nm airglow emission during El Niño/La Niña extreme events in solar cycles 23–24. // Optika Atmosfery i Okeana. 2017. V. 30. No. 11. P. 986–989. DOI: 10.15372/AOO20171112 [in Russian].
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Mikhalev A.V. The [OI] 557.7-nm Airglow Emission during El Niño/La Niña Extreme Events in Solar Cycles 23–24. // Atmospheric and Oceanic Optics, 2018, V. 31. No. 02. pp. 197–200.
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13. Botygina N. N., Emaleev O. N., Konyaev P. A., Kopylov E. A., Lukin V. P. The development of components for creation of adaptive optics system for the solar telescope. P. 990–997
Bibliographic reference:
Botygina N. N., Emaleev O. N., Konyaev P. A., Kopylov E. A., Lukin V. P. The development of components for creation of adaptive optics system for the solar telescope. // Optika Atmosfery i Okeana. 2017. V. 30. No. 11. P. 990–997. DOI: 10.15372/AOO20171113 [in Russian].
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Botygina N.N., Emaleev O.N., Konyaev P.A., Kopylov E.A. and Lukin V.P. Development of Components for Adaptive Optics Systems for Solar Telescopes. // Atmospheric and Oceanic Optics, 2018, V. 31. No. 02. pp. 216–223.
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14. Information. P. 998