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Formation and evolution of molecular products in α-pinene secondary organic aerosol

机译:α-pine烯二次有机气溶胶分子产物的形成与演化

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摘要

Much of our understanding of atmospheric secondary organic aerosol (SOA) formation from volatile organic compounds derives from laboratory chamber measurements, including mass yield and elemental composition. These measurements alone are insufficient to identify the chemical mechanisms of SOA production. We present here a comprehensive dataset on the molecular identity, abundance, and kinetics of α-pinene SOA, a canonical system that has received much attention owing to its importance as an organic aerosol source in the pristine atmosphere. Identified organic species account for ∼58–72% of the α-pinene SOA mass, and are characterized as semivolatile/low-volatility monomers and extremely low volatility dimers, which exhibit comparable oxidation states yet different functionalities. Features of the α-pinene SOA formation process are revealed for the first time, to our knowledge, from the dynamics of individual particle-phase components. Although monomeric products dominate the overall aerosol mass, rapid production of dimers plays a key role in initiating particle growth. Continuous production of monomers is observed after the parent α-pinene is consumed, which cannot be explained solely by gas-phase photochemical production. Additionally, distinct responses of monomers and dimers to α-pinene oxidation by ozone vs. hydroxyl radicals, temperature, and relative humidity are observed. Gas-phase radical combination reactions together with condensed phase rearrangement of labile molecules potentially explain the newly characterized SOA features, thereby opening up further avenues for understanding formation and evolution mechanisms of α-pinene SOA.
机译:我们对由挥发性有机化合物形成的大气次级有机气溶胶(SOA)的大部分了解来自实验室的测量室,包括质量产率和元素组成。仅这些测量就不足以确定SOA生产的化学机理。我们在这里提供有关α-pine烯SOA分子身份,丰度和动力学的综合数据集,该系统因其在原始大气中作为有机气溶胶源的重要性而受到广泛关注。鉴定出的有机物种类占α-pine烯SOA总量的约58-72%,并被表征为半挥发性/低挥发性单体和极低挥发性的二聚体,它们具有可比的氧化态和不同的功能。据我们所知,α-pine烯SOA形成过程的特征是首次从单个颗粒相组分的动力学中揭示出来的。尽管单体产品在整个气溶胶质量中占主导地位,但二聚体的快速生成在引发颗粒生长中起着关键作用。在母体α-pine烯被消耗后,观察到单体的连续生产,这不能仅通过气相光化学生产来解释。另外,观察到单体和二聚体对臭氧对羟基自由基,温度和相对湿度的α-pine烯氧化的不同响应。气相自由基结合反应以及不稳定分子的冷凝相重排可能解释了SOA的新特征,从而为理解α-pine烯SOA的形成和演化机理开辟了更多途径。

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