Significant light induced ozone loss on biomass burning aerosol: Evidence from chemistry‐transport modeling based on new laboratory studies
暂无分享,去创建一个
Christian George | I. B. Konovalov | Matthias Beekmann | M. Beekmann | I. Konovalov | B. d'Anna | Barbara D'Anna | C. George
[1] B. Buchmann,et al. Uncertainty and bias of surface ozone measurements at selected Global Atmosphere Watch sites , 2003 .
[2] M. Legrand,et al. Chemical composition of atmospheric aerosols during the 2003 summer intense forest fire period , 2008 .
[3] F. Dominici,et al. Ozone and short-term mortality in 95 US urban communities, 1987-2000. , 2004, JAMA.
[4] Stephen E. Schwartz,et al. Mass-Transport Considerations Pertinent to Aqueous Phase Reactions of Gases in Liquid-Water Clouds , 1986 .
[5] M. Facchini,et al. Water‐soluble organic compounds in biomass burning aerosols over Amazonia 2. Apportionment of the chemical composition and importance of the polyacidic fraction , 2002 .
[6] Michal Krzyzanowski,et al. Satellite-based estimates of ground-level fine particulate matter during extreme events: A case study of the Moscow fires in 2010 , 2011 .
[7] John Methven,et al. Processes influencing ozone levels in Alaskan forest fire plumes during long-range transport over the , 2007 .
[8] M. Beekmann,et al. Atmospheric impacts of the 2010 Russian wildfires: integrating modelling and measurements of an extreme air pollution episode in the Moscow region , 2011 .
[9] X. Querol,et al. Summer 2009 wildfires in Portugal: Emission of trace gases and aerosol composition , 2011 .
[10] M. Matsueda. Predictability of Euro‐Russian blocking in summer of 2010 , 2011 .
[11] S. Solomon. The Physical Science Basis : Contribution of Working Group I to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change , 2007 .
[12] R. McKenzie,et al. Changes in biologically active ultraviolet radiation reaching the Earth's surface. , 1998, Photochemical & photobiological sciences : Official journal of the European Photochemistry Association and the European Society for Photobiology.
[13] D. Jacob. Heterogeneous chemistry and tropospheric ozone , 2000 .
[14] A. Wisthaler,et al. Light‐induced ozone depletion by humic acid films and submicron aerosol particles , 2009 .
[15] Philippe Thunis,et al. Evaluation and intercomparison of Ozone and PM10 simulations by several chemistry transport models over four European cities within the CityDelta project , 2007 .
[16] G. Grell,et al. A description of the fifth-generation Penn State/NCAR Mesoscale Model (MM5) , 1994 .
[17] O. Edenhofer,et al. Mitigation from a cross-sectoral perspective , 2007 .
[18] M. Legrand,et al. Seasonal trends and possible sources of brown carbon based on 2-year aerosol measurements at six sites in Europe , 2007 .
[19] H. Mukai,et al. Characterization of a humic acid-like brown substance in airborne particulate matter and tentative identification of its origin , 1986 .
[20] J. Yu,et al. Humic-like substances in fresh emissions of rice straw burning and in ambient aerosols in the Pearl River Delta Region, China , 2010 .
[21] J. Randerson,et al. Global fire emissions and the contribution of deforestation, savanna, forest, agricultural, and peat fires (1997-2009) , 2010 .
[22] D. Voisin,et al. Oxidation of atmospheric humic like substances by ozone: a kinetic and structural analysis approach. , 2011, Environmental science & technology.
[23] D. Jaffe,et al. Ozone production from wildfires: A critical review , 2012 .