Technical note: Chemical composition and source identification of fluorescent components in atmospheric water-soluble brown carbon by excitation–emission matrix spectroscopy with parallel factor analysis – potential limitations and applications
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Jun Li | Xingjun Fan | T. Cao | W. Jia | Meiju Li | Cuncun Xu | Pingan Peng | Jianzhong Song
[1] Yingjun Chen,et al. Molecular Signatures and Sources of Fluorescent Components in Atmospheric Organic Matter in South China , 2022, Environmental Science & Technology Letters.
[2] Q. Zhang,et al. Optical properties, molecular characterizations, and oxidative potentials of different polarity levels of water-soluble organic matters in winter PM2.5 in six China's megacities. , 2022, The Science of the total environment.
[3] Hong Qi,et al. Fluorescence fingerprinting characteristics of water-soluble organic carbon from size-resolved particles during pollution event. , 2022, Chemosphere.
[4] Junji Cao,et al. Optical properties, chemical functional group, and oxidative activity of different polarity levels of water-soluble organic matter in PM2.5 from biomass and coal combustion in rural areas in Northwest China , 2022, Atmospheric Environment.
[5] K. Xiao,et al. Facile Differentiation of Four Sources of Water-Soluble Organic Carbon in Atmospheric Particulates Using Multiple Fluorescence Spectral Fingerprints , 2022, Environmental Science & Technology Letters.
[6] I. Grgić,et al. Seasonal variability of nitroaromatic compounds in ambient aerosols: Mass size distribution, possible sources and contribution to water-soluble brown carbon light absorption. , 2022, Chemosphere.
[7] Zifa Wang,et al. Measurement Report: Optical properties and sources of water-soluble brown carbon in Tianjin, North China: insights from organic molecular compositions , 2022 .
[8] Junji Cao,et al. Seasonal and diurnal variation of PM2.5 HULIS over Xi'an in Northwest China: Optical properties, chemical functional group, and relationship with reactive oxygen species (ROS) , 2022, Atmospheric Environment.
[9] H. Ni,et al. Chromophoric Fingerprinting of Brown Carbon from Residential Biomass Burning , 2021, Environmental Science & Technology Letters.
[10] Ming Li,et al. Variation in the content and fluorescent composition of dissolved organic matter in soil water during rainfall-induced wetting and extract of dried soil. , 2021, The Science of the total environment.
[11] P. Peng,et al. Chemical composition, optical properties, and oxidative potential of water- and methanol-soluble organic compounds emitted from the combustion of biomass materials and coal , 2021, Atmospheric Chemistry and Physics.
[12] N. T. Tsona,et al. Aqueous-phase oxidation of syringic acid emitted from biomass burning: Formation of light-absorbing compounds. , 2020, The Science of the total environment.
[13] A. Laskin,et al. Fluorescence characteristics of water-soluble organic carbon in atmospheric aerosol☆. , 2020, Environmental pollution.
[14] A. Lebedev,et al. Peat burning - An important source of pyridines in the earth atmosphere. , 2020, Environmental pollution.
[15] Shanshan Tang,et al. Aqueous-Phase Photooxidation of Vanillic Acid: A Potential Source of Humic-Like Substances (HULIS) , 2020 .
[16] Gan Zhang,et al. Molecular compositions and optical properties of dissolved brown carbon in biomass burning, coal combustion, and vehicle emission aerosols illuminated by excitation–emission matrix spectroscopy and Fourier transform ion cyclotron resonance mass spectrometry analysis , 2020 .
[17] Leiming Zhang,et al. Application of parallel factor analysis model to decompose excitation-emission matrix fluorescence spectra for characterizing sources of water-soluble brown carbon in PM2.5 , 2020 .
[18] Xudong Yang,et al. Identification of species and sources of atmospheric chromophores by fluorescence excitation-emission matrix with parallel factor analysis. , 2020, The Science of the total environment.
[19] I. Grgić,et al. Aqueous-Phase Brown Carbon Formation from Aromatic Precursors under Sunlight Conditions , 2020, Atmosphere.
[20] Laodong Guo,et al. Variations in colloidal DOM composition with molecular weight within individual water samples as characterized by flow field-flow fractionation and EEM-PARAFAC analysis. , 2020, Environmental science & technology.
[21] P. Peng,et al. Supplementary material to "The evolutionary behavior of chromophoric brown carbon during ozone aging of fine particles from biomass burning" , 2019 .
[22] Zifa Wang,et al. Excitation-emission matrix fluorescence, molecular characterization and compound-specific stable carbon isotopic composition of dissolved organic matter in cloud water over Mt. Tai , 2019, Atmospheric Environment.
[23] I. Grgić,et al. Electrochemistry as a Tool for Studies of Complex Reaction Mechanisms: The Case of the Atmospheric Aqueous-Phase Aging of Catechols. , 2019, Environmental science & technology.
[24] E. Seto,et al. Excitation-Emission Matrix Spectroscopy for Analysis of Chemical Composition of Combustion Generated Particulate Matter. , 2019, Environmental science & technology.
[25] L. Cang,et al. Seasonal Levels, Sources, and Health Risks of Heavy Metals in Atmospheric PM2.5 from Four Functional Areas of Nanjing City, Eastern China , 2019, Atmosphere.
[26] B. Jiang,et al. Formation of substances with humic-like fluorescence properties, upon photoinduced oligomerization of typical phenolic compounds emitted by biomass burning , 2019, Atmospheric Environment.
[27] Z. Bai,et al. Water-Soluble Brown Carbon in Atmospheric Aerosols from Godavari (Nepal), a Regional Representative of South Asia. , 2019, Environmental science & technology.
[28] R. Bahreini,et al. Brown Carbon Formation from Nighttime Chemistry of Unsaturated Heterocyclic Volatile Organic Compounds , 2019, Environmental Science & Technology Letters.
[29] K. Murphy,et al. Photochemistry Illuminates Ubiquitous Organic Matter Fluorescence Spectra. , 2018, Environmental science & technology.
[30] Jing-chun Duan,et al. Fluorescence fingerprinting properties for exploring water-soluble organic compounds in PM2.5 in an industrial city of northwest China , 2018, Atmospheric Environment.
[31] J. Hur,et al. Exploring the fate and oxidation behaviors of different organic constituents in landfill leachate upon Fenton oxidation processes using EEM-PARAFAC and 2D-COS-FTIR. , 2018, Journal of hazardous materials.
[32] Michael Ippolito,et al. pH Dependence of the Imidazole-2-carboxaldehyde Hydration Equilibrium: Implications for Atmospheric Light Absorbance , 2017 .
[33] Guebuem Kim,et al. Speciation and Sources of Brown Carbon in Precipitation at Seoul, Korea: Insights from Excitation-Emission Matrix Spectroscopy and Carbon Isotopic Analysis. , 2017, Environmental science & technology.
[34] L. Zhong,et al. Proteins and Amino Acids in Fine Particulate Matter in Rural Guangzhou, Southern China: Seasonal Cycles, Sources, and Atmospheric Processes. , 2017, Environmental science & technology.
[35] E. Jeppesen,et al. Potential rainfall-intensity and pH-driven shifts in the apparent fluorescent composition of dissolved organic matter in rainwater. , 2017, Environmental pollution.
[36] K. Eleftheriadis,et al. Characterization of PM2.5 chemical composition at the Demokritos suburban station, in Athens Greece. The influence of Saharan dust , 2017, Environmental Science and Pollution Research.
[37] Qingcai Chen,et al. Light Absorption and Excitation-Emission Fluorescence of Urban Organic Aerosol Components and Their Relationship to Chemical Structure. , 2016, Environmental science & technology.
[38] R. Volkamer,et al. Characterization of Chromophoric Water-Soluble Organic Matter in Urban, Forest, and Marine Aerosols by HR-ToF-AMS Analysis and Excitation-Emission Matrix Spectroscopy. , 2016, Environmental science & technology.
[39] G. Mailhot,et al. Tryptophan and tryptophan-like substances in cloud water: Occurrence and photochemical fate , 2016 .
[40] A. L. Corrigan,et al. Maillard Chemistry in Clouds and Aqueous Aerosol As a Source of Atmospheric Humic-Like Substances. , 2016, Environmental science & technology.
[41] Jeremy D. Smith,et al. Phenolic carbonyls undergo rapid aqueous photodegradation to form low-volatility, light-absorbing products , 2016 .
[42] Giovanni Ghigo,et al. Computational assessment of the fluorescence emission of phenol oligomers: A possible insight into the fluorescence properties of humic-like substances (HULIS) , 2016 .
[43] A. Laskin,et al. Molecular transformations of phenolic SOA during photochemical aging in the aqueous phase: competition among oligomerization, functionalization, and fragmentation , 2015 .
[44] J. Yu,et al. Reactive Oxygen Species Production Mediated by Humic-like Substances in Atmospheric Aerosols: Enhancement Effects by Pyridine, Imidazole, and Their Derivatives. , 2015, Environmental science & technology.
[45] A. Ding,et al. Fluorescent water-soluble organic aerosols in the High Arctic atmosphere , 2015, Scientific Reports.
[46] A. Laskin,et al. Chemistry of atmospheric brown carbon. , 2015, Chemical reviews.
[47] A. Duarte,et al. Natural organic matter in urban aerosols: Comparison between water and alkaline soluble components using excitation–emission matrix fluorescence spectroscopy and multiway data analysis , 2015 .
[48] Qi Zhang,et al. Interactive comment on “ Chemical characterization of SOA formed from aqueous-phase reactions of phenols with the triplet excited state of carbonyl and hydroxyl radical ” , 2014 .
[49] B. Qin,et al. Absorption and fluorescence characteristics of rainwater CDOM and contribution to Lake Taihu, China , 2014 .
[50] M. Minella,et al. Photochemical generation of photoactive compounds with fulvic-like and humic-like fluorescence in aqueous solution. , 2014, Chemosphere.
[51] D. O. De Haan,et al. Brown carbon formation by aqueous-phase carbonyl compound reactions with amines and ammonium sulfate. , 2014, Environmental science & technology.
[52] Kathleen R. Murphy,et al. Fluorescence spectroscopy and multi-way techniques. PARAFAC , 2013 .
[53] A. Laskin,et al. Excitation-emission spectra and fluorescence quantum yields for fresh and aged biogenic secondary organic aerosols. , 2013, Environmental science & technology.
[54] R. Weber,et al. Sources, composition and absorption Ångström exponent of light-absorbing organic components in aerosol extracts from the Los Angeles Basin. , 2013, Environmental science & technology.
[55] M. Canle,et al. Environmental Applications of Excitation-Emission Spectrofluorimetry: An In-Depth Review I , 2013 .
[56] U. Pöschl,et al. Autofluorescence of atmospheric bioaerosols – fluorescent biomolecules and potential interferences , 2011 .
[57] P. Dagaut,et al. Advances in PAHs/nitro-PAHs fractioning , 2010 .
[58] K. Murphy,et al. Measurement of dissolved organic matter fluorescence in aquatic environments: an interlaboratory comparison. , 2010, Environmental science & technology.
[59] Fa-sheng Li,et al. Characterizing the release of different composition of dissolved organic matter in soil under acid rain leaching using three-dimensional excitation-emission matrix spectroscopy. , 2009, Chemosphere.
[60] Paula G Coble,et al. Marine optical biogeochemistry: the chemistry of ocean color. , 2007, Chemical reviews.
[61] Gan Zhang,et al. Supplement of Measurement report: Long-emission-wavelength chromophores dominate the light absorption of brown carbon in aerosols over Bangkok: impact from biomass burning , 2021 .
[62] G. Mailhot,et al. Could triplet-sensitised transformation of phenolic compounds represent a source of fulvic-like substances in natural waters? , 2013, Chemosphere.
[63] J. Bauer,et al. Characteristics of water-soluble organic carbon associated with aerosol particles in the eastern United States , 2012 .
[64] Yinon Rudich,et al. Atmospheric HULIS : how humic-like are they ? A comprehensive and critical review , 2005 .
[65] P. Coble. Characterization of marine and terrestrial DOM in seawater using excitation-emission matrix spectroscopy , 1996 .