Elizabeth A. Ainsworth et al.: The Effects of Tropospheric Ozone on Net Primary Productivity and Implications for Climate Change. Annual Review of Plant Biology 63, 2012, doi:10.1146/annurev-arplant-042110-103829 (freier Volltext).
Yutaka Matsumi, Masahiro Kawasaki: Photolysis of Atmospheric Ozone in the Ultraviolet Region. Chem. Rev. 103, 2003, doi:10.1021/cr0205255 (freier Volltext).
Diese Reaktion ist nicht elementar, sondern verläuft je nach Druck über HOCO* oder H, siehe David C. McCabe, Tomasz Gierczak, Ranajit K. Talukdar und A. R. Ravishankara: Kinetics of the Reaction OH + CO Under Atmospheric Conditions. Geophysical Research Letters 28, 2001, doi:10.1029/2000GL012719 (freier Volltext).
K. B. Moiseenko et al.: Regional Photochemical Surface-Ozone Sources in Europe and Western Siberia. Izvestiya, Atmospheric and Oceanic Physics 54, 2018, doi:10.1134/S0001433818060105 (freier Volltext).
L. L. Pan et al.: Bimodal distribution of free tropospheric ozone over the tropical western Pacific revealed by airborne observations. Geophysical Research Letters 42, 2015, doi:10.1002/2015GL065562 (freier Volltext).
Elizabeth A. Ainsworth et al.: The Effects of Tropospheric Ozone on Net Primary Productivity and Implications for Climate Change. Annual Review of Plant Biology 63, 2012, doi:10.1146/annurev-arplant-042110-103829 (freier Volltext).
Yutaka Matsumi, Masahiro Kawasaki: Photolysis of Atmospheric Ozone in the Ultraviolet Region. Chem. Rev. 103, 2003, doi:10.1021/cr0205255 (freier Volltext).
K. B. Moiseenko et al.: Regional Photochemical Surface-Ozone Sources in Europe and Western Siberia. Izvestiya, Atmospheric and Oceanic Physics 54, 2018, doi:10.1134/S0001433818060105 (freier Volltext).