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Interfacial Tensions of Aged Organic Aerosol Particle Mimics Using a Biphasic Microfluidic Platform

机译:使用双相微流控平台的老化有机气溶胶颗粒模拟物的界面张力。

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摘要

Secondary organic aerosol (SOA) particles are a major component of atmospheric particulate matter, yet their formation processes and ambient properties are not well understood. These complex particles often contain multiple interfaces due to internal aqueous- and organic-phase partitioning. Aerosol interfaces can profoundly affect the fate of condensable organic compounds emitted into the atmosphere by altering the way in which ambient organic vapors interact with suspended particles. To accurately predict the evolution of SOA in the atmosphere, we must improve our understanding of aerosol interfaces. In this work, biphasic microscale flows are used to measure interfacial tension of reacting methylglyoxal, formaldehyde, and ammonium sulfate aqueous mixtures with a surrounding oil phase. Our experiments show a suppression of interfacial tension as a function of organic content that remains constant with reaction time for methytglyoxal-ammonium sulfate systems. We also reveal an unexpected time dependence of interfacial tension over a period of 48 h for ternary solutions of both methylglyoxal and formaldehyde in aqueous ammonium sulfate, indicating a more complicated behavior of surface activity where there is competition among dissolved organics. From these interfacial tension measurements, the morphology of aged atmospheric aerosols with internal liquid-liquid phase separation is inferred.
机译:次级有机气溶胶(SOA)颗粒是大气颗粒物的主要成分,但是它们的形成过程和环境特性尚未得到很好的了解。由于内部的水相和有机相分配,这些复合粒子通常包含多个界面。气溶胶界面可以通过改变周围有机蒸气与悬浮颗粒相互作用的方式,深刻影响排放到大气中的可冷凝有机化合物的命运。为了准确预测大气中SOA的演变,我们必须增进对气溶胶界面的了解。在这项工作中,双相微尺度流用于测量甲基乙二醛,甲醛和硫酸铵水溶液混合物与周围油相反应的界面张力。我们的实验表明,对于甲基乙二醛-硫酸铵系统,界面张力随有机物含量的变化随反应时间而保持恒定。我们还揭示了甲基乙二醛和甲醛在硫酸铵水溶液中的三元溶液在48小时内界面张力的出乎意料的时间依赖性,表明在溶解的有机物之间存在竞争时,表面活性的行为更为复杂。从这些界面张力测量中,可以推断出内部气-液相分离的老化大气气溶胶的形态。

著录项

  • 来源
    《Environmental Science & Technology》 |2016年第3期|1251-1259|共9页
  • 作者单位

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

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

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

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-17 13:58:39

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