Vertical Distribution of Ozone in the Upper Troposphere–Stratosphere according to lidar Sounding Data at the Siberian Lidar Station in 2023

O. Yu. Antokhina, P. N. Antokhin, V. G. Arshinova, M. Yu. Arshinov, B. D. Belan, S. B. Belan, D. K. Davydov, G. A. Ivlev, A. V. Kozlov, T. M. Rasskazchikova, D. E. Savkin, D. V. Simonenkov, T. K. Sklyadneva, G. N. Tolmachev, and A. V. Fofonov, “The large-scale atmospheric circulation pattern over Asia associated with formation of extremely high surface ozone concentrations in the region of Tomsk (Western Siberia),” Atmos. Ocean. Opt. 36 (4), 348–355 (2023).

Article  Google Scholar 

P. N. Antokhin, V. G. Arshinova, M. Yu. Arshinov, B. D. Belan, S. B. Belan, L. P. Golobokova, D. K. Davydov, G. A. Ivlev, A. V. Kozlov, A. S. Kozlov, V. I. Otmakhov, T. M. Rasskazchikova, D. V. Simonenkov, G. N. Tolmachev, and A. V. Fofonov, “Change in the air composition upon the transition from the troposphere to the stratosphere,” Atmos. Ocean. Opt. 34 (6), 567–576 (2021).

Article  Google Scholar 

V. V. Andreev, M. Yu. Arshinov, B. D. Belan, S. B. Belan, V. A. Gordyushkin, D. K. Davydov, V. I. Demin, N. V. Dudorova, N. F. Elanskii, R. V. Ivanov, G. A. Ivlev, A. V. Kozlov, L. V. Konoval’tseva, M. Yu. Korenskii, S. N. Kotel’nikov, I. N. Kuznetsova, V. A. Lapchenko, E. A. Lezina, O. O. Marchenko, V. A. Obolkin, O. V. Postylyakov, V. L. Potemkin, D. E. Savkin, E. G. Semutnikova, I. A. Senik, E. V. Stepanov, G. N. Tolmachev, A. V. Fofonov, T. V. Khodzher, I. V. Chelibanov, V. P. Chelibanov, V. V. Shirotov, Yu. A. Shtabkin, and K. A. Shukurov, “Tropospheric ozone concentration in Russia in 2023,” Opt. Atmos. Okeana 37 (8), 688–698 (2024). https://doi.org/10.15372/AOO20240809

Article  Google Scholar 

G. Ancellet, S. Godin-Beekmann, H. G. J. Smit, R. M. Stauffer, R. Van Malderen, R. Bodichon, and A. Pazmino, “Homogenization of the Observatoire De Haute Provence Electrochemical Concentration Cell (ECC) Ozonesonde data record: Comparison with lidar and satellite observations,” Atmos. Meas. Tech. 15, 3105–3120 (2022). https://doi.org/10.5194/amt-15-3105-2022

Article  Google Scholar 

T. Trickl, H. Giehl, F. Neidl, M. Perfahl, and H. Vogelmann, “Three decades of tropospheric ozone lidar development at Garmisch-Partenkirchen, Germany,” Atmos. Meas. Tech. 13, 6357–6390 (2020). https://doi.org/10.5194/amt-13-6357-2020

Article  Google Scholar 

R. Wing, S. Godin-Beekmann, W. Steinbrecht, T. J. McGee, J. T. Sullivan, S. Khaykin, G. Sumnicht, and L. Twigg, “Evaluation of the new DWD ozone and temperature lidar during the Hohenpeißenberg Ozone Profiling Study (HOPS) and comparison of results with previous NDACC campaigns,” Atmos. Meas. Tech. 14, 3773–3794 (2021). https://doi.org/10.5194/amt-14-3773-2021

Article  Google Scholar 

E. Galani, D. Balis, P. Zanis, C. Zerefos, A. Papayannis, H. Wemli, and E. Gerasopoulos, “Observations of stratosphere-troposphere transport events over the eastern Mediterranean using a ground-based lidar system,” J. Geophys. Res. 108 (D12), TA12 (2003).

Google Scholar 

M. Nakazato, T. Nagai, T. Sakai, and Y. Hirose, “Tropospheric ozone differential-absorption lidar using stimulated Raman scattering in carbon dioxide,” Appl. Opt. 46 (12), 2269–2279 (2007). https://doi.org/10.1364/ao.46.002269

Article  ADS  Google Scholar 

V. S. Bukreev, S. K. Vartapetov, I. A. Veselovskii, A. S. Galustov, Yu. M. Kovalev, A. M. Prokhorov, E. S. Svetogorov, S. S. Khmelevtsov, and Ch. H. Li, “Excimer-laser-based lidar system for stratospheric and tropospheric ozone measurements,” Quantum Electron. 24 (6), 546–551 (1994). https://doi.org/10.1070/QE1994v024n06ABEH000136

Article  ADS  Google Scholar 

H. Eisele, H. E. Scheel, R. Sladkovic, and T. Trickl, “High resolution lidar measurements of stratosphere-troposphere exchange,” J. Atmos. Sci. 56 (3), 319–330 (1999).

Article  ADS  Google Scholar 

R. M. Measures, Laser Remote Sensing: Fundamentals and Applications (Krieger Publishing Company, Malabar, 1992).

Google Scholar 

A. R. Ivanova, “Stratosphere-troposphere exchange and its specific features at extratropical latitudes,” Russ. Meteorol. Hydrol. 41 (3), 170–185 (2016).

Article  Google Scholar 

N. P. Shakina, A. R. Ivanova, N. F. Elansky, and T. A. Markova, “Transcontinental observations of surface ozone concentration in the TROICA experiments: 2. The effect of the stratosphere–troposphere exchange,” Izv., Atmos. Ocean. Phys. 37 (1), 39–S48 (2001).

Google Scholar 

J. Brioude, J.-P. Cammas, O. R. Cooper, and P. Nedelec, “Characterization of the composition, structure, and seasonal variation of the mixing layer above the extratropical tropopause as revealed by MOZAIC measurements,” J. Geophys. Res. 113 (D00B01), 1–17 (2008). https://doi.org/10.1029/2007JD009184

V. D. Burlakov, S. I. Dolgii, and A. V. Nevzorov, “Modification of the measuring complex at the Siberian Lidar Station,” Atmos. Ocean. Opt. 17 (10), 756–762 (2004).

Google Scholar 

V. V. Zuev, V. D. Burlakov, S. I. Dolgii, and A. V. Nevzorov, “Differential absorption lidar for ozone sensing in the upper troposphere–lower stratosphere,” Atmos. Ocean. Opt. 21 (10), 765–768 (2008).

Google Scholar 

A. J. Krueger and R. A. Minzner, “Mid-latitude ozone model for the 1976 U.S. standard atmosphere,” J. Geophys. Res. 81 (D24), 4477 (1976). https://doi.org/10.1029/JC081i024p04477

Article  ADS  Google Scholar 

V. V. Zuev, V. D. Burlakov, S. I. Dolgii, A. V. Nevzorov, and A. V. El’nikov, “Breakthrough of stratospheric air masses into the upper troposphere retrieved from ozone lidar measurements,” Atmos. Ocean. Opt. 21 (7), 514–519 (2008).

Google Scholar 

A. Stohl, P. Bonasoni, P. Cristofanelli, and W. Collins, “Stratosphere-troposphere exchange: A review, and what we have learned from STOCCATO,” J. Geophys. Res. D 108 (12) (2003). https://doi.org/10.1029/2002JD002490

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