Sulfate formation via aerosol-phase SO2 oxidation by model biomass burning photosensitizers: 3,4-dimethoxybenzaldehyde, vanillin and syringaldehyde using single-particle mixing-state analysis
暂无分享,去创建一个
C. Chan | Liyuan Zhou | Chunlei Cheng | Mei Li | Rongzhi Tang | Zhancong Liang | Beatrix Rosette Go Mabato | R. A. I. Cuevas
[1] C. Chan,et al. Comparison of aqueous secondary organic aerosol (aqSOA) product distributions from guaiacol oxidation by non-phenolic and phenolic methoxybenzaldehydes as photosensitizers in the absence and presence of ammonium nitrate , 2023, Atmospheric Chemistry and Physics.
[2] J. Yu,et al. Source apportionment of PM2.5 using PMF combined online bulk and single-particle measurements: Contribution of fireworks and biomass burning. , 2022, Journal of environmental sciences.
[3] A. Lai,et al. Sulfate Formation in Incense Burning Particles: A Single-Particle Mass Spectrometric Study , 2022, Environmental Science & Technology Letters.
[4] X. Bi,et al. Atmospheric Processing of Particulate Imidazole Compounds Driven by Photochemistry , 2022, Environmental Science & Technology Letters.
[5] C. Chan,et al. Aqueous secondary organic aerosol formation from the direct photosensitized oxidation of vanillin in the absence and presence of ammonium nitrate , 2022, Atmospheric Chemistry and Physics.
[6] C. Chan,et al. Real-time chemical characterization of single ambient particles at a port city in Chinese domestic emission control area - Impacts of ship emissions on urban air quality. , 2022, Science of the Total Environment.
[7] J. Abbatt,et al. Oxidation of sulfur dioxide by nitrogen dioxide accelerated at the interface of deliquesced aerosol particles , 2021, Nature Chemistry.
[8] R. Sullivan,et al. Morphology of Organic Carbon Coatings on Biomass-Burning Particles and Their Role in Reactive Gas Uptake , 2021, ACS Earth and Space Chemistry.
[9] H. Herrmann,et al. Aromatic Carbonyl and Nitro Compounds as Photosensitizers and Their Photophysical Properties in the Tropospheric Aqueous Phase. , 2021, The journal of physical chemistry. A.
[10] J. Abbatt,et al. Multiphase Oxidation of Sulfur Dioxide in Aerosol Particles: Implications for Sulfate Formation in Polluted Environments. , 2021, Environmental science & technology.
[11] Jianhe Wei,et al. Chemical Constituents and Anti-Inflammatory Effect of Incense Smoke from Agarwood Determined by GC-MS , 2020 .
[12] X. Ge,et al. Secondary organic aerosol formation from 3C⁎-initiated oxidation of 4-ethylguaiacol in atmospheric aqueous-phase. , 2020, The Science of the total environment.
[13] C. Chan,et al. Enhanced Sulfate Production by Nitrate Photolysis in the Presence of Halide Ions in Atmospheric Particles. , 2020, Environmental science & technology.
[14] A. Mellouki,et al. Atmospheric photosensitization: a new pathway for sulfate formation. , 2020, Environmental science & technology.
[15] J. Abbatt,et al. Fast oxidation of sulfur dioxide by hydrogen peroxide in deliquesced aerosol particles , 2020, Proceedings of the National Academy of Sciences.
[16] Min Hu,et al. Multiphase Reactions between Secondary Organic Aerosol and Sulfur Dioxide: Kinetics and Contributions to Sulfate Formation and Aerosol Aging , 2019 .
[17] C. Chan,et al. Heterogeneous Oxidation of SO2 in Sulfate Production During Nitrate Photolysis at 300 nm: Effect of pH, Relative Humidity, Irradiation Intensity, and the Presence of Organic Compounds. , 2019, Environmental science & technology.
[18] S. Lou,et al. Real-time analysis of the homogeneous and heterogeneous reactions of pyrene with ozone by SPAMS and CRD-EAS. , 2019, Chemosphere.
[19] C. Chan,et al. Heterogeneous SO2 Oxidation in Sulfate Formation by Photolysis of Particulate Nitrate , 2019, Environmental Science & Technology Letters.
[20] Qi Zhang,et al. Photooxidants from brown carbon and other chromophores in illuminated particle extracts , 2018, Atmospheric Chemistry and Physics.
[21] J. S. Francisco,et al. Photochemistry of SO2 at the Air-Water Interface: A Source of OH and HOSO Radicals. , 2018, Journal of the American Chemical Society.
[22] S. Perrier,et al. Particle-Phase Photosensitized Radical Production and Aerosol Aging. , 2018, Environmental science & technology.
[23] V. Vaida,et al. Atmospheric Hydroxyl Radical Source: Reaction of Triplet SO2 and Water. , 2018, The journal of physical chemistry. A.
[24] C. Anastasio,et al. First Measurements of Organic Triplet Excited States in Atmospheric Waters. , 2018, Environmental science & technology.
[25] J. Abbatt,et al. Novel pathway of SO 2 oxidation in the atmosphere: reactions with monoterpene ozonolysis intermediates and secondary organic aerosol , 2017 .
[26] N. Saigusa,et al. Secondary formation of oxalic acid and related organic species from biogenic sources in a larch forest at the northern slope of Mt. Fuji , 2017 .
[27] C. Chan,et al. Mixing state of oxalic acid containing particles in the rural area of Pearl River Delta, China: implications for the formation mechanism of oxalic acid , 2017 .
[28] Kebin He,et al. Reactive nitrogen chemistry in aerosol water as a source of sulfate during haze events in China , 2016, Science Advances.
[29] Fang Zhang,et al. Persistent sulfate formation from London Fog to Chinese haze , 2016, Proceedings of the National Academy of Sciences.
[30] P. Louie,et al. A Field Measurement Based Scaling Approach for Quantification of Major Ions, Organic Carbon, and Elemental Carbon Using a Single Particle Aerosol Mass Spectrometer , 2016 .
[31] R. Volkamer,et al. Heterogeneous photochemistry of imidazole-2-carboxaldehyde: HO2 radical formation and aerosol growth , 2016 .
[32] S. Fruin,et al. International Airport Impacts to Air Quality: Size and Related Properties of Large Increases in Ultrafine Particle Number Concentrations. , 2016, Environmental science & technology.
[33] Jeremy D. Smith,et al. Phenolic carbonyls undergo rapid aqueous photodegradation to form low-volatility, light-absorbing products , 2016 .
[34] I. Riipinen,et al. Particulate matter, air quality and climate: Lessons learned and future needs , 2015 .
[35] Q. Ying,et al. Formation of urban fine particulate matter. , 2015, Chemical reviews.
[36] Christian George,et al. Heterogeneous Photochemistry in the Atmosphere , 2015, Chemical reviews.
[37] Xiaoye Zhang,et al. Chemical composition and mass size distribution of PM 1 at an elevated site in central east China , 2014 .
[38] J. Jimenez,et al. Impacts of Aerosol Aging on Laser Desorption/Ionization in Single-Particle Mass Spectrometers , 2014 .
[39] Kebin He,et al. Heterogeneous chemistry: a mechanism missing in current models to explain secondary inorganic aerosol formation during the January 2013 haze episode in North China , 2014 .
[40] Qi Zhang,et al. Secondary organic aerosol production from aqueous reactions of atmospheric phenols with an organic triplet excited state. , 2014, Environmental science & technology.
[41] K. Prather,et al. Air quality impact and physicochemical aging of biomass burning aerosols during the 2007 San Diego wildfires. , 2013, Environmental science & technology.
[42] P. Hoppe,et al. Enhanced Role of Transition Metal Ion Catalysis During In-Cloud Oxidation of SO2 , 2013, Science.
[43] V. Grassian,et al. Role(s) of adsorbed water in the surface chemistry of environmental interfaces. , 2013, Chemical communications.
[44] S. Gligorovski,et al. Atmospheric photosensitized heterogeneous and multiphase reactions: from outdoors to indoors. , 2012, Environmental science & technology.
[45] C. Chan,et al. Characterization of Organic Particles from Incense Burning Using an Aerodyne High-Resolution Time-of-Flight Aerosol Mass Spectrometer , 2012 .
[46] P. Cheng,et al. Real time bipolar time-of-flight mass spectrometer for analyzing single aerosol particles , 2011 .
[47] C. Sharpless,et al. Correlations between dissolved organic matter optical properties and quantum yields of singlet oxygen and hydrogen peroxide. , 2010, Environmental science & technology.
[48] Xin Yang,et al. Single particle mass spectrometry of oxalic acid in ambient aerosols in Shanghai: Mixing state and formation mechanism , 2009 .
[49] S. Martin,et al. Deliquescence and Efflorescence of Potassium Salts Relevant to Biomass-Burning Aerosol Particles , 2009 .
[50] K. Prather,et al. Development and characterization of an aircraft aerosol time-of-flight mass spectrometer. , 2009, Analytical chemistry.
[51] Beiping Luo,et al. A thermodynamic model of mixed organic-inorganic aerosols to predict activity coefficients , 2008 .
[52] D. Pui,et al. Laboratory and on-road evaluations of cabin air filters using number and surface area concentration monitors. , 2008, Environmental science & technology.
[53] M. Johnston,et al. Ion formation mechanism in laser desorption ionization of individual nanoparticles , 2008, Journal of the American Society for Mass Spectrometry.
[54] André Nel,et al. ATMOSPHERE: Enhanced: Air Pollution-Related Illness: Effects of Particles , 2005 .
[55] J. Schauer,et al. Highly polar organic compounds present in wood smoke and in the ambient atmosphere. , 2001, Environmental science & technology.
[56] G R Cass,et al. Measurement of emissions from air pollution sources. 3. C1-C29 organic compounds from fireplace combustion of wood. , 2001, Environmental science & technology.
[57] D. S. Gross,et al. Relative sensitivity factors for alkali metal and ammonium cations in single-particle aerosol time-of-flight mass spectra. , 2000, Analytical chemistry.
[58] K. Stemmler,et al. Transformation kinetics of phenols in water: photosensitization by dissolved natural organic material and aromatic ketones. , 1995, Environmental science & technology.
[59] Glen R. Cass,et al. Lignin pyrolysis products, lignans, and resin acids as specific tracers of plant classes in emissions from biomass combustion , 1993 .
[60] W. Liu,et al. Ultrastructural changes of tracheal epithelium and alveolar macrophages of rats exposed to mosquito coil smoke. , 1988, Toxicology letters.
[61] C. Chan,et al. Air pollution in mega cities in China , 2008 .
[62] G. Cass,et al. Sources of Fine Organic Aerosol. 9. Pine, Oak, and Synthetic Log Combustion in Residential Fireplaces , 1998 .
[63] B. Faust,et al. Aromatic carbonyl compounds as aqueous-phase photochemical sources of hydrogen peroxide in acidic sulfate aerosols, fogs, and clouds. I. Non-phenolic methoxybenzaldehydes and methoxyacetophenones with reductants (phenols) , 1997 .
[64] T. Ibusuki,et al. Sulfur dioxide oxidation by oxygen catalyzed by mixtures of manganese(II) and iron(III) in aqueous solutions at environmental reaction conditions , 1987 .
[65] K. T. Whitby,et al. Atmospheric Aerosols: Size Distribution Interpretation , 1975 .