Seasonal variations in the production of singlet oxygen and organic triplet excited states in aqueous PM2.5 in Hong Kong SAR, South China

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Abstract

Photooxidants drive many atmospheric chemical processes. The photoexcitation of light-Absorbing organic compounds (i.e., brown carbon, BrC) in atmospheric waters can lead to the generation of reactive organic triplet excited states (3Cg-), which can undergo further reactions to produce other photooxidants such as singlet oxygen (1O2g-). To determine the importance of these aqueous photooxidants in secondary organic aerosol (SOA) formation and transformation, we must know their steady-state concentrations and quantum yields. However, there have been limited measurements of aqueous 3Cg-and 1O2g-in atmospheric samples outside of North America and Europe. In this work, we report the first measurements of the steady-state concentrations and quantum yields of 3Cg-and 1O2g-produced in aerosols in South China. We quantified the production of 3Cg-and 1O2g-in illuminated aqueous extracts of PM2.5 collected in different seasons at two urban sites and one coastal semi-rural site during a year-round study conducted in Hong Kong SAR, South China. The mass absorption coefficients at 300gnm for BrC in the aqueous PM2.5 extracts ranged from 0.49 to 2.01gm2gg-C-1 for the three sites. Both 1O2g-and 3Cg-were produced year-round. The steady-state concentrations of 1O2g-([1O2g-]ss) in the illuminated aqueous extracts ranged from 1.56×10-14 to 1.35×10-12gM, with a study average of (4.02±3.52)×10-13gM. At nearly 2 orders of magnitude lower than [1O2g-]ss, the steady-state concentrations of 3Cg-([3Cg-]ss) ranged from 2.93×10-16 to 8.08×10-14gM, with a study average of (1.09±1.39)×10-14gM. The quantum yields of 1O2g-and 3Cg-also spanned wide ranges across samples, with a range of 1.19g% to 13.74g% and an average of (5.19±2.63)g% for 1O2g-and a range of 0.05g% to 3.24g% and an average of (0.56±0.66)g% for 3Cg-. The [1O2g-]ss and [3Cg-]ss correlated with the concentration and absorbance of BrC, thus implying that the amount of BrC drives the steady-state concentrations of these photooxidants. The locations (urban vs. semi-rural) did not have a significant effect on [3Cg-]ss and [1O2g-]ss, which indicated that BrC from local sources did not have a significant influence on the year-round 3Cg-and 1O2g-production. 3Cg-and 1O2g-production were found to be the highest in winter and the lowest in summer for all three sites. The observed seasonal trends of 1O2g-and 3Cg-production could be attributed to the seasonal variations in the long-range air mass transport. Our analysis highlighted the key role that regional sources play in influencing the composition and concentrations of water-soluble BrC in winter PM2.5 in Hong Kong SAR, which contributed to their highest 3Cg-and 1O2g-production. The current results will be useful for modeling seasonal aqueous organic aerosol photochemistry in the South China region.

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Lyu, Y., Lam, Y. H., Li, Y., Borduas-Dedekind, N., & Nah, T. (2023). Seasonal variations in the production of singlet oxygen and organic triplet excited states in aqueous PM2.5 in Hong Kong SAR, South China. Atmospheric Chemistry and Physics, 23(16), 9245–9263. https://doi.org/10.5194/acp-23-9245-2023

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