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大气中异戊二烯环氧化二醇与无机硫酸盐气溶胶比值增加导致大量无机硫酸盐向有机硫形态转化:对气溶胶物理化学性质的影响。

Increasing Isoprene Epoxydiol-to-Inorganic Sulfate Aerosol Ratio Results in Extensive Conversion of Inorganic Sulfate to Organosulfur Forms: Implications for Aerosol Physicochemical Properties.

机构信息

Department of Environmental Sciences and Engineering, Gillings School of Global Public Health , The University of North Carolina at Chapel Hill , Chapel Hill , North Carolina 27599 , United States.

Department of Mechanical Engineering , University of Minnesota-Twin Cities , Minneapolis , Minnesota 55455 , United States.

出版信息

Environ Sci Technol. 2019 Aug 6;53(15):8682-8694. doi: 10.1021/acs.est.9b01019. Epub 2019 Jul 23.

Abstract

Acid-driven multiphase chemistry of isoprene epoxydiols (IEPOX), key isoprene oxidation products, with inorganic sulfate aerosol yields substantial amounts of secondary organic aerosol (SOA) through the formation of organosulfur compounds. The extent and implications of inorganic-to-organic sulfate conversion, however, are unknown. In this article, we demonstrate that extensive consumption of inorganic sulfate occurs, which increases with the IEPOX-to-inorganic sulfate concentration ratio (IEPOX/Sulf), as determined by laboratory measurements. Characterization of the total sulfur aerosol observed at Look Rock, Tennessee, from 2007 to 2016 shows that organosulfur mass fractions will likely continue to increase with ongoing declines in anthropogenic Sulf, consistent with our laboratory findings. We further demonstrate that organosulfur compounds greatly modify critical aerosol properties, such as acidity, morphology, viscosity, and phase state. These new mechanistic insights demonstrate that changes in SO emissions, especially in isoprene-dominated environments, will significantly alter biogenic SOA physicochemical properties. Consequently, IEPOX/Sulf will play an important role in understanding the historical climate and determining future impacts of biogenic SOA on the global climate and air quality.

摘要

异戊二烯环氧化二羧酸(IEPOX)是关键的异戊二烯氧化产物,与无机硫酸盐气溶胶反应生成大量的有机硫化合物,从而产生大量的次生有机气溶胶(SOA)。然而,无机-有机硫酸盐转化的程度和影响尚不清楚。在本文中,我们通过实验室测量表明,大量的无机硫酸盐被消耗,并且随着 IEPOX 与无机硫酸盐浓度比(IEPOX/Sulf)的增加而增加。对 2007 年至 2016 年田纳西州 Look Rock 观测到的总硫气溶胶的特征表明,随着人为硫酸盐的持续下降,有机硫质量分数可能会继续增加,这与我们的实验室发现一致。我们进一步证明,有机硫化合物极大地改变了关键的气溶胶特性,如酸度、形态、粘度和相态。这些新的机制见解表明,SO 排放的变化,特别是在异戊二烯占主导地位的环境中,将显著改变生物源 SOA 的物理化学性质。因此,IEPOX/Sulf 将在理解历史气候和确定生物源 SOA 对全球气候和空气质量的未来影响方面发挥重要作用。

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