Department of Chemical Engineering and Applied Chemistry , University of Toronto , Toronto , Ontario M5S 3E5 , Canada.
Department of Chemistry , University of Toronto , Toronto , Ontario M5S 3H6 , Canada.
Environ Sci Technol. 2019 Sep 17;53(18):10695-10704. doi: 10.1021/acs.est.9b02591. Epub 2019 Sep 3.
Sulfur oxides (SO) are important atmospheric trace species in both gas and particulate phases, and sulfate is a major component of atmospheric aerosol. One potentially important source of particulate sulfate formation is the oxidation of dissolved SO by organic peroxides, which comprises a major fraction of secondary organic aerosol (SOA). In this study, we investigated the reaction kinetics and mechanisms between SO and condensed-phase peroxides. pH-dependent aqueous phase reaction rate constants between S(IV) and organic peroxide standards were measured. Highly oxygenated organic peroxides with O/C > 0.6 in α-pinene SOA react rapidly with S(IV) species in the aqueous phase. The reactions between organic peroxides and S(IV) yield both inorganic sulfate and organosulfates (OS), as observed by electrospray ionization ion mobility mass spectrometry. For the first time, S-labeling experiments in this study revealed that dissolved SO forms OS via direct reactions without forming inorganic sulfate as a reactive intermediate. Kinetics of OS formation was estimated semiquantitatively, and such reaction was found to account for 30-60% of sulfur reacted. The photochemical box model GAMMA was applied to assess the implications of the measured SO consumption and OS formation rates. Our findings indicate that this novel pathway of SO-peroxide reaction is important for sulfate formation in submicron aerosol.
硫氧化物(SO)是气相和颗粒相中重要的痕量大气物种,硫酸盐是大气气溶胶的主要成分之一。颗粒态硫酸盐形成的一个潜在重要来源是溶解态 SO 通过有机过氧化物的氧化,这构成了二次有机气溶胶(SOA)的主要部分。在这项研究中,我们研究了 SO 和凝聚相过氧化物之间的反应动力学和机制。测量了 S(IV)与有机过氧化物标准品之间与 pH 相关的水相反应速率常数。α-蒎烯 SOA 中具有 O/C > 0.6 的高度含氧有机过氧化物与水相中的 S(IV)物种快速反应。有机过氧化物和 S(IV)之间的反应生成无机硫酸盐和有机硫酸盐(OS),这通过电喷雾电离离子迁移质谱得到证实。本研究中的 S 标记实验首次揭示,溶解态 SO 通过直接反应形成 OS,而无机硫酸盐不是反应中间体。OS 形成的动力学被半定量估计,发现这种反应占反应硫的 30-60%。应用光化学箱模型 GAMMA 评估了所测量的 SO 消耗和 OS 形成速率的影响。我们的研究结果表明,这种新型的 SO-过氧化物反应途径对于亚微米气溶胶中硫酸盐的形成很重要。