The reaction of hydroxyl and methylperoxy radicals is not a major source of atmospheric methanol
暂无分享,去创建一个
Ming-Wei Chen | C. Percival | D. Shallcross | J. Zádor | K. Ramasesha | A. Tomas | M. Duncianu | D. Osborn | C. Taatjes | C. Schoemaecker | C. Fittschen | I. Antonov | L. Sheps | B. Rotavera | D. Rösch | M. A. Khan | R. Caravan | K. Au | A. Grira | S. Dusanter
[1] N. Abraham,et al. Global modelling of the total OH reactivity: investigations on the “missing” OH sink and its atmospheric implications , 2018 .
[2] C. Schoemaecker,et al. The reaction of fluorine atoms with methanol: yield of CH3O/CH2OH and rate constant of the reactions CH3O + CH3O and CH3O + HO2. , 2018, Physical chemistry chemical physics : PCCP.
[3] Basile F. E. Curchod,et al. Criegee Intermediate–Alcohol Reactions, A Potential Source of Functionalized Hydroperoxides in the Atmosphere , 2017 .
[4] J. D. de Gouw,et al. Proton-Transfer-Reaction Mass Spectrometry: Applications in Atmospheric Sciences. , 2017, Chemical reviews.
[5] Y. Kajii,et al. Rate constants of the reaction of C 2 -C 4 peroxy radicals with OH radicals , 2017 .
[6] A. Tomas,et al. The Reaction between CH3O2 and OH Radicals: Product Yields and Atmospheric Implications. , 2017, Environmental science & technology.
[7] A. Tomas,et al. Rate Constant of the Reaction between CH3O2 Radicals and OH Radicals Revisited. , 2016, The journal of physical chemistry. A.
[8] T. Stavrakou,et al. The reaction of methyl peroxy and hydroxyl radicals as a major source of atmospheric methanol , 2016, Nature Communications.
[9] L. Krasnoperov,et al. Kinetics of the Reaction of CH3O2 Radicals with OH Studied over the 292-526 K Temperature Range. , 2016, The journal of physical chemistry. A.
[10] J. Peischl,et al. A large and ubiquitous source of atmospheric formic acid , 2015 .
[11] Edmond P. F. Lee,et al. Reaction between CH3O2 and BrO radicals: a new source of upper troposphere lower stratosphere hydroxyl radicals. , 2015, The journal of physical chemistry. A.
[12] R. Derwent,et al. Global analysis of peroxy radicals and peroxy radical-water complexation using the STOCHEM-CRI global chemistry and transport model , 2015 .
[13] S. Sander,et al. VUV photoionization cross sections of HO2, H2O2, and H2CO. , 2015, The journal of physical chemistry. A.
[14] B. Viskolcz,et al. Experimental determination of the rate constant of the reaction between C2H5O2 and OH radicals , 2015 .
[15] R. Derwent,et al. Reassessing the photochemical production of methanol from peroxy radical self and cross reactions using the STOCHEM-CRI global chemistry and transport model , 2014 .
[16] D. Heard,et al. The reaction of CH3O2 radicals with OH radicals: a neglected sink for CH3O2 in the remote atmosphere. , 2014, Environmental science & technology.
[17] C. Schoemaecker,et al. Rate constant of the reaction between CH3O2 and OH radicals , 2014 .
[18] Edmond P. F. Lee,et al. Regional and global impacts of Criegee intermediates on atmospheric sulphuric acid concentrations and first steps of aerosol formation. , 2013, Faraday discussions.
[19] J. Orlando,et al. Laboratory Studies of Organic Peroxy Radical Chemistry: An Overview with Emphasis on Recent Issues of Atmospheric Significance , 2012 .
[20] J. Orlando,et al. Laboratory studies of organic peroxy radical chemistry: an overview with emphasis on recent issues of atmospheric significance. , 2012, Chemical Society reviews.
[21] V. Payne,et al. Methanol from TES global observations: retrieval algorithm and seasonal and spatial variability. , 2012, Atmospheric chemistry and physics.
[22] V. Vaida. Perspective: Water cluster mediated atmospheric chemistry. , 2011, The Journal of chemical physics.
[23] J. Galloo,et al. Development of a sampling method for the simultaneous monitoring of straight-chain alkanes, straight-chain saturated carbonyl compounds and monoterpenes in remote areas. , 2011, Journal of environmental monitoring : JEM.
[24] M. Aubinet,et al. First space-based derivation of the global atmospheric methanol emission fluxes , 2011 .
[25] R. Derwent,et al. Using a reduced Common Representative Intermediates (CRIv2-R5) mechanism to simulate tropospheric ozone in a 3-D Lagrangian chemistry transport model , 2010 .
[26] P. Pernot,et al. Determination of the absolute photoionization cross sections of CH3 and I produced from a pyrolysis source, by combined synchrotron and vacuum ultraviolet laser studies. , 2010, The journal of physical chemistry. A.
[27] N. Butkovskaya,et al. Water vapor effect on the HNO3 yield in the HO2 + NO reaction: experimental and theoretical evidence. , 2009, The journal of physical chemistry. A.
[28] C. Percival,et al. On the importance of the reaction between OH and RO2 radicals , 2009 .
[29] D. Shallcross,et al. A Common Representative Intermediates (CRI) mechanism for VOC degradation. Part 3: Development of a secondary organic aerosol module , 2009 .
[30] D. Jacob,et al. New constraints on terrestrial and oceanic sources of atmospheric methanol , 2008 .
[31] D. Shallcross,et al. A Common Representative Intermediates (CRI) mechanism for VOC degradation. Part 2: Gas phase mechanism reduction , 2008 .
[32] V. P. Kazakov,et al. Singlet-oxygen chemiluminescence in peroxide reactions. , 2005, Chemical reviews.
[33] D. Jacob,et al. Global budget of methanol : Constraints from atmospheric observations , 2005 .
[34] P. Crutzen,et al. A model for studies of tropospheric ozone and nonmethane hydrocarbons: Model evaluation of ozone-related species , 2003 .
[35] M. Pilling,et al. Measurement of OH and HO2 in the troposphere. , 2003, Chemical reviews.
[36] Elisabeth A. Holland,et al. Biogenic methanol and its impacts on tropospheric oxidants , 2003 .
[37] John P. Burrows,et al. Peroxy radical and related trace gas measurements in the boundary layer above the Atlantic Ocean , 2001 .
[38] Koller,et al. 17O NMR spectroscopic characterization and the mechanism of formation of alkyl hydrotrioxides (ROOOH) and hydrogen trioxide (HOOOH) in the low-temperature ozonation of isopropyl alcohol and isopropyl methyl ether: water-assisted decomposition , 2000, Chemistry.
[39] D. Stevenson,et al. Tropospheric Ozone in a Global-Scale Three-Dimensional Lagrangian Model and Its Response to NOX Emission Controls , 1997 .
[40] R. A. Cox,et al. Organic peroxy radicals: Kinetics, spectroscopy and tropospheric chemistry , 1992 .
[41] A. Thompson,et al. The Oxidizing Capacity of the Earth's Atmosphere: Probable Past and Future Changes , 1992, Science.
[42] Wing Tsang,et al. Chemical Kinetic Data Base for Combustion Chemistry. Part 2. Methanol , 1987 .
[43] Wing Tsang,et al. Chemical Kinetic Data Base for Combustion Chemistry. Part I. Methane and Related Compounds , 1986 .
[44] J. C. Person,et al. Isotope Effects in the Photoionization Yields and in the Absorption Cross Sections for Methanol, Ethanol, Methyl Bromide, and Ethyl Bromide , 1971 .
[45] H. Bouzidi,et al. Photolysis of 2,3-pentanedione and 2,3-hexanedione: Kinetics, quantum yields, and product study in a simulation chamber , 2014 .
[46] Richard G. Derwent,et al. The European regional ozone distribution and its links with the global scale for the years 1992 and 2015 , 2000 .
[47] M. J. P. Cullen,et al. The unified forecast/climate model , 1993 .