Fast Hydroxyl Radical Generation at the Air-Water Interface of Aerosols Mediated by Water-Soluble PM 2.5 under Ultraviolet A Radiation

Due to the adverse health effects and the role in the formation of secondary organic aerosols, hydroxyl radical (OH) generation by atmospheric fine particulate matter (PM) has been of particular research interest in both bulk solutions and the gas phase. However, OH generation by PM at the air-water...

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Veröffentlicht in:Journal of the American Chemical Society 2023-03, Vol.145 (11), p.6462-6470
Hauptverfasser: Zhang, Dongmei, Wang, Jie, Chen, Huan, Gong, Chu, Xing, Dong, Liu, Ziao, Gladich, Ivan, Francisco, Joseph S, Zhang, Xinxing
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Sprache:eng
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Zusammenfassung:Due to the adverse health effects and the role in the formation of secondary organic aerosols, hydroxyl radical (OH) generation by atmospheric fine particulate matter (PM) has been of particular research interest in both bulk solutions and the gas phase. However, OH generation by PM at the air-water interface of atmospheric water droplets, a unique environment where reactions can be accelerated by orders of magnitude, has long been overlooked. Using the field-induced droplet ionization mass spectrometry methodology that selectively samples molecules at the air-water interface, here, we show significant oxidation of amphiphilic lipids and isoprene mediated by water-soluble PM at the air-water interface under ultraviolet A irradiation, with the OH generation rate estimated to be 1.5 × 10 molecule·s ·m . Atomistic molecular dynamics simulations support the counter-intuitive affinity for the air-water interface of isoprene. We opine that it is the carboxylic chelators of the surface-active molecules in PM that enrich photocatalytic metals such as iron at the air-water interface and greatly enhance the OH generation therein. This work provides a potential new heterogeneous OH generation channel in the atmosphere.
ISSN:0002-7863
1520-5126
DOI:10.1021/jacs.3c00300