SOA formation from photooxidation of naphthalene and methylnaphthalenes with m-xylene and surrogate mixtures
Abstract
SOA formation is not well predicted in current models in urban area. The interaction among multiple anthropogenic volatile organic compounds is essential for the SOA formation in the complex urban atmosphere. Secondary organic aerosol (SOA) from the photooxidation of naphthalene, 1-methylnaphthalene, and 2-methylnaphthalene as well as individual polycyclic aromatic hydrocarbons (PAHs) mixed with m-xylene or an atmospheric surrogate mixture was explored in the UCR CE-CERT environmental chamber under urban relevant low NOxand extremely low NO_x (H_2O_2) conditions. Addition of m-xylene suppressed SOA formation from the individual PAH precursor. A similar suppression effect on SOA formation was observed during the surrogate mixture photooxidation suggesting the importance of gas-phase chemical reactivity to SOA formation. The SOA growth rate for different PAH-m-xylene mixtures was strongly correlated with initial [HO_2]/[RO_2] ratio but negatively correlated with initial m-xylene/NO ratio. Decreasing SOA formation was observed for increasing m-xylene/PAHs ratios and increasing initial m-xylene/NO ratio. The SOA chemical composition characteristics such as f_(44) versus f_(43), H/C ratio, O/C ratio, and the oxidation state of the carbon OS_c were consistent with a continuously aging with the SOA exhibiting characteristics of both individual precursors. SOA formation from PAHs was also suppressed within an atmospheric surrogate mixture compared to the SOA formed from individual PAHs, indicating that atmospheric reactivity directly influences SOA formation from PAHs.
Additional Information
© 2018 Published by Elsevier Ltd. Received 16 October 2017, Revised 20 February 2018, Accepted 26 February 2018, Available online 2 March 2018. We gratefully acknowledge funding support from W.M. Keck Foundation and National Science Foundation (ATM-0449778 and ATM-0901282).Attached Files
Supplemental Material - 1-s2.0-S1352231018301365-mmc1.docx
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Additional details
Identifiers
- Eprint ID
- 86310
- Resolver ID
- CaltechAUTHORS:20180509-105352738
Funding
- W. M. Keck Foundation
- NSF
- ATM-0449778
- NSF
- ATM-0901282
Dates
- Created
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2018-05-09Created from EPrint's datestamp field
- Updated
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2021-11-15Created from EPrint's last_modified field