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dc.contributor.authorHammes, Julia
dc.date.accessioned2019-01-15T13:57:33Z
dc.date.available2019-01-15T13:57:33Z
dc.date.issued2019-01-15
dc.identifier.isbn978-91-7833-069-0
dc.identifier.urihttp://hdl.handle.net/2077/58315
dc.description.abstractThe results from this work are a piece in understanding the complex puzzle of atmospheric aerosol formation. Secondary organic aerosol (SOA) formed by the oxidation of volatile organic compounds (VOC) in the atmosphere is a key component of air pollution with a strong negative impact on human health and influence on climate, but its formation is poorly understood. Because air pollution and climate change are major challenges facing modern societies, there is a clear need to better understand atmospheric SOA formation. SOA formation can be estimated from distributions of potential oxidation products, but such estimates are only as useful as the underlying chemical mechanisms and physical properties on which they are based. The work presented in this thesis was conducted to better characterize VOC oxidation products and the chemical mechanisms governing their formation. The SOA precursor compounds a-pinene and limonene (representing biogenic VOC) and 1,3,5- trimethylbenzene (TMB) (an anthropogenic VOC) were studied in the G-FROST and Go:PAM flow reactors to characterize their oxidation and the subsequent SOA-forming processes. Previously unknown compounds including dimer esters, carboxylic acids, nitrates and highly oxygenated molecules were identified using state-of-the-art mass spectrometric methods. These oxidation products were shown to be important SOA contributors and explicit mechanisms for their formation were proposed. Some of the identified compounds were suggested to be of extremely low volatility and thus important for new particle formation. Oxidation of TMB under conditions representative of urban environments reduced particle formation potential; this effect was attributed to the disruption of RO2 auto-oxidation cycles by NOx and subsequent nitrate formation at the expense of highly oxygenated molecules. During the course of this work, an automated algorithm was developed to extract compound-specific volatility data from FIGAERO thermograms. The scientific understanding of SOA formation would be greatly improved by a detailed knowledge of the products of VOC oxidation, the mechanisms by which they are formed, and their vapour pressures, all of which this work aims to contribute to.sv
dc.language.isoengsv
dc.relation.haspartHigh-molecular weight dimer esters are major products in aerosols from -pinene ozonolysis and the boreal forest Kristensen, K., Watne, Å. K., Hammes, J., Lutz, A., Petäjä, T., Hallquist, M., Bilde, M. and Glasius, M.; Environ. Sci. Technol. Lett., 3 (8), 280–285, 2016; ::doi::10.1021/acs.estlett.6b00152sv
dc.relation.haspartCharacterization of organic nitrate constituents of secondary organic aerosol (SOA) from nitrate-radical-initiated oxidation of limonene using High-Resolution Chemical Ionization Mass Spectrometry Faxon, C., Hammes, J., Pathak, R. K., and Hallquist, M.; Atmos. Chem. Phys., 18, 5467-5481, 2018; ::doi::10.5194/acp-18-5467-2018sv
dc.relation.haspartCarboxylic acids from limonene oxidation by ozone and OH radicals: Insights into mechanisms derived using a FIGAERO-CIMS Hammes, J., Lutz, A., Mentel, T., Faxon, C. and Hallquist, M.; Atmos. Chem. Phys. Discuss., in review, 2018; ::doi::10.5194/acp-2018-1004sv
dc.relation.haspartEffect of NOx on 1,3,5-trimethylbenzene (TMB) oxidation product distribution and particle formation Hammes, J., Tsiligiannis, E., Mentel, T. and Hallquist, M.; Manuscript in preparation, 2018sv
dc.relation.haspartA method for extracting calibrated volatility information from the FIGAERO-HR-ToF-CIMS and application to chamber and field work studies Bannan, T. J., Le Breton, M., Priestley, M., Worrall S. D., Bacak, A., Marsden, N., Hammes, J., Hallquist, M., Alfarra R., Krieger U. K., Reid, J., Jayne J., Gordon McFiggans, G., Hugh Coe, H., Percival, C. J. and Topping, D.; ::doi::10.5194/amt-2018-255sv
dc.subjectSOAsv
dc.subjectVOCsv
dc.subjectanthropogenicsv
dc.subjectbiogenicsv
dc.subjectFIGAEROsv
dc.subjectCIMSsv
dc.subjectHOMssv
dc.subjectELVOCssv
dc.subjectatmospheric oxidationsv
dc.subjectchemical mechanismsv
dc.subjectNOxsv
dc.subjectlimonenesv
dc.subjecta-pinenesv
dc.subjectTMBsv
dc.subjectozonesv
dc.subjectnitratesv
dc.subjectOHsv
dc.subjectradical chemistrysv
dc.subjectRO2sv
dc.subjectG-FROSTsv
dc.subjectGO:PAMsv
dc.titleAtmospheric Chemistry of Volatile Organic Compounds: Oxidation Products, Mechanisms and Secondary Organic Aerosol Formationsv
dc.typeTextswe
dc.type.svepDoctoral thesiseng
dc.gup.mailjuliahpunkt@gmail.comsv
dc.type.degreeDoctor of Philosophysv
dc.gup.originUniversity of Gothenburg. Faculty of Sciencesv
dc.gup.departmentDepartment of Chemistry and Molecular Biology ; Institutionen för kemi och molekylärbiologisv
dc.gup.defenceplaceOnsdagen den 6 February 2019, kl 10.00, KB, Kemigården 4sv
dc.gup.defencedate2019-02-06
dc.gup.dissdb-fakultetMNF


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