Content of issue 09, volume 28, 2015

1. Falits A. V. The wander and optical scintillation of focused Laguerre–Gaussian beams in turbulent atmosphere. P. 763-771
Bibliographic reference:
Falits A. V. The wander and optical scintillation of focused Laguerre–Gaussian beams in turbulent atmosphere. // Optika Atmosfery i Okeana. 2015. V. 28. No. 09. P. 763-771. DOI: 10.15372/AOO20150901 [in Russian].
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2. Ptashnik I. V., Klimeshina T. E., Petrova T. M., Solodov A. A., Solodov A. M. Water vapour continuum absorption at decreased temperatures within 2.7 and 6.25 μm bands. P. 772-776
Bibliographic reference:
Ptashnik I. V., Klimeshina T. E., Petrova T. M., Solodov A. A., Solodov A. M. Water vapour continuum absorption at decreased temperatures within 2.7 and 6.25 μm bands. // Optika Atmosfery i Okeana. 2015. V. 28. No. 09. P. 772-776. DOI: 10.15372/AOO20150902 [in Russian].
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Ptashnik I.V., Klimeshina T.E., Petrova T.M., Solodov A.A. and Solodov A.M. Water Vapor Continuum Absorption in the 2.7 and 6.25 μm Bands at Decreased Temperatures. // Atmospheric and Oceanic Optics, 2016, V. 29. No. 03. pp. 211–215.
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3. Borkov Yu. G., Klimachev Yu. M., Sulakshina O. N. The dependence of Zeeman splitting of spectral lines of NO molecule on the magnetic field magnitude. P. 777-791
Bibliographic reference:
Borkov Yu. G., Klimachev Yu. M., Sulakshina O. N. The dependence of Zeeman splitting of spectral lines of NO molecule on the magnetic field magnitude. // Optika Atmosfery i Okeana. 2015. V. 28. No. 09. P. 777-791. DOI: 10.15372/AOO20150903 [in Russian].
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Borkov Yu.G., Klimachev Yu.M., and Sulakshina O.N. Dependence of Zeeman Splitting of Spectral Lines on the Magnetic Field Magnitude for NO molecule. // Atmospheric and Oceanic Optics, 2016, V. 29. No. 02. pp. 103–118.
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4. Pestunov D. A., Domysheva V. M., Ivanov V. G., Shamrin A. M., Panchenko M. V. Spatial distribution of CO2 and CH4  fluxes directions over water surface of Lake Baikal (round-Baikal expedition, June, 2013). P. 792-799
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Pestunov D. A., Domysheva V. M., Ivanov V. G., Shamrin A. M., Panchenko M. V. Spatial distribution of CO2 and CH4  fluxes directions over water surface of Lake Baikal (round-Baikal expedition, June, 2013). // Optika Atmosfery i Okeana. 2015. V. 28. No. 09. P. 792-799. DOI: 10.15372/AOO20150904 [in Russian].
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5. Zvyagintsev A. M., Vargin P. N., Peshin S. Total ozone content variability and trends during 1979–2014. P. 800-809
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Zvyagintsev A. M., Vargin P. N., Peshin S. Total ozone content variability and trends during 1979–2014. // Optika Atmosfery i Okeana. 2015. V. 28. No. 09. P. 800-809. DOI: 10.15372/AOO20150905 [in Russian].
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Zvyagintsev A.M., Vargin P.N., and Peshin S. Total Ozone Variations and Trends during the Period 1979–2014. // Atmospheric and Oceanic Optics, 2015, V. 28. No. 06. pp. 575–584.
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6. Gruzdev A. N., Isakov A. A. On the nature of long-period variations in the mass concentration of the near-surface aerosol. P. 810-815
Bibliographic reference:
Gruzdev A. N., Isakov A. A. On the nature of long-period variations in the mass concentration of the near-surface aerosol. // Optika Atmosfery i Okeana. 2015. V. 28. No. 09. P. 810-815. DOI: 10.15372/AOO20150906 [in Russian].
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Gruzdev A.N. and Isakov A.A. On the Nature of Long-Period Variations in Mass Concentration of Near-Ground Aerosol. // Atmospheric and Oceanic Optics, 2016, V. 29. No. 01. pp. 73–78.
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7. Rakitin V. S., Shtabkin Yu. A., Elansky N. F., Pankratova N. V., Skorochod A. I., Grechko E. I., Safronov A. N. Results of comparison of satellite and ground-based spectroscopic CO, CH4, and CO2 columns measurements. P. 816-824
Bibliographic reference:
Rakitin V. S., Shtabkin Yu. A., Elansky N. F., Pankratova N. V., Skorochod A. I., Grechko E. I., Safronov A. N. Results of comparison of satellite and ground-based spectroscopic CO, CH4, and CO2 columns measurements. // Optika Atmosfery i Okeana. 2015. V. 28. No. 09. P. 816-824. DOI: 10.15372/AOO20150907 [in Russian].
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Rakitin V.S., Shtabkin Yu.A., Elansky N.F., Pankratova N.V., Skorokhod A.I., Grechko E.I., and Safronov A.N. Comparison Results of Satellite and Ground-Based Spectroscopic Measurements of CO, CH4, and CO2 Total Contents. // Atmospheric and Oceanic Optics, 2015, V. 28. No. 06. pp. 533–542.
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8. Voronetskaya N. G., Pevneva G. S., Golovko A. K., Kozlov A. S., Arshinov M. Yu., Belan B. D., Simonenkov D. V., Tolmachev G. N. Spatial variability of aerosol organic component in the ground layer and in the free atmosphere. P. 825-829
Bibliographic reference:
Voronetskaya N. G., Pevneva G. S., Golovko A. K., Kozlov A. S., Arshinov M. Yu., Belan B. D., Simonenkov D. V., Tolmachev G. N. Spatial variability of aerosol organic component in the ground layer and in the free atmosphere. // Optika Atmosfery i Okeana. 2015. V. 28. No. 09. P. 825-829. DOI: 10.15372/AOO20150908 [in Russian].
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9. Konoshonkin A. V., Kustova N. V., Osipov V. A., Borovoy A. G., Masuda K., Ishimoto H., Okamoto H. Physical optics approximation for solving problems of light scattering on the ice crystal particles: Comparison of the vector formulations of diffraction. P. 830-843
Bibliographic reference:
Konoshonkin A. V., Kustova N. V., Osipov V. A., Borovoy A. G., Masuda K., Ishimoto H., Okamoto H. Physical optics approximation for solving problems of light scattering on the ice crystal particles: Comparison of the vector formulations of diffraction. // Optika Atmosfery i Okeana. 2015. V. 28. No. 09. P. 830-843. DOI: 10.15372/AOO20150909 [in Russian].
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10. Konyaev P. A., Borovik A. V., Zhdanov A. A. Spotless flares structure and development analysis using digital images of solar chromosphere. P. 844-849
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Konyaev P. A., Borovik A. V., Zhdanov A. A. Spotless flares structure and development analysis using digital images of solar chromosphere. // Optika Atmosfery i Okeana. 2015. V. 28. No. 09. P. 844-849. DOI: 10.15372/AOO20150910 [in Russian].
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Konyaev P.A., Borovik A.V., and Zhdanov A.A. Analysis of Structure and Development of Spotless Flares Using Digital Images of the Solar Chromosphere. // Atmospheric and Oceanic Optics, 2016, V. 29. No. 01. pp. 89–94.
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11. Trigub M. V., Fedorov K. V., Evtushenko G. S. Remote object visualization using a laser monitor with a typical pulse duration of CuBr brightness amplifier. P. 850-853
Bibliographic reference:
Trigub M. V., Fedorov K. V., Evtushenko G. S. Remote object visualization using a laser monitor with a typical pulse duration of CuBr brightness amplifier. // Optika Atmosfery i Okeana. 2015. V. 28. No. 09. P. 850-853. DOI: 10.15372/AOO20150911 [in Russian].
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12. Baksht E. H., Burachenko A. G., Tarasenko V. F. Generation of runaway electrons at lower pressures of air, nitrogen, and argon. P. 854-858
Bibliographic reference:
Baksht E. H., Burachenko A. G., Tarasenko V. F. Generation of runaway electrons at lower pressures of air, nitrogen, and argon. // Optika Atmosfery i Okeana. 2015. V. 28. No. 09. P. 854-858. DOI: 10.15372/AOO20150912 [in Russian].
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Baksht E.Kh., Burachenko A.G., and Tarasenko V.F. Generation of Runaway Electrons at Low Pressures in Air, Nitrogen, and Argon. // Atmospheric and Oceanic Optics, 2015, V. 28. No. 06. pp. 606–609.
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13. Fedorov A. I., Shiyanov D. V. Low-freguency CuBr laser. P. 859-863
Bibliographic reference:
Fedorov A. I., Shiyanov D. V. Low-freguency CuBr laser. // Optika Atmosfery i Okeana. 2015. V. 28. No. 09. P. 859-863. DOI: 10.15372/AOO20150913 [in Russian].
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14. Information. P. 864