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Gas-particle partitioning of atmospheric aerosols: interplay of physical state, non-ideal mixing and morphology

机译:大气气溶胶的气体-颗粒分配:物理状态,非理想混合和形态的相互作用

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摘要

Atmospheric aerosols, comprising organic compounds and inorganic salts, play a key role in air quality and climate. Mounting evidence exists that these particles frequently exhibit phase separation into predominantly organic and aqueous electrolyte-rich phases. As well, the presence of amorphous semi-solid or glassy particle phases has been established. Using the canonical system of ammonium sulfate mixed with organics from the ozone oxidation of α-pinene, we illustrate theoretically the interplay of physical state, non-ideality, and particle morphology affecting aerosol mass concentration and the characteristic timescale of gas–particle mass transfer. Phase separation can significantly affect overall particle mass and chemical composition. Semi-solid or glassy phases can kinetically inhibit the partitioning of semivolatile components and hygroscopic growth, in contrast to the traditional assumption that organic compounds exist in quasi-instantaneous gas–particle equilibrium. These effects have significant implications for the interpretation of laboratory data and the development of improved atmospheric air quality and climate models.
机译:包含有机化合物和无机盐的大气气溶胶在空气质量和气候中起关键作用。越来越多的证据表明,这些颗粒经常会发生相分离,变成主要是富含有机和含水电解质的相。同样,已经确定了无定形半固体或玻璃状颗粒相的存在。使用规范化的硫酸铵与α-pine烯臭氧氧化过程中的有机物混合而成的系统,我们从理论上说明了影响气溶胶质量浓度的物理状态,非理想状态和颗粒形态之间的相互作用,以及气-质传质的特征时间尺度。相分离可显着影响总体颗粒质量和化学组成。与传统的假定有机化合物以准瞬时气体-颗粒平衡存在的传统假设相反,半固态或玻璃态可以动力学抑制半挥发性成分的分配和吸湿性的增长。这些影响对实验室数据的解释以及改进的大气质量和气候模型的开发具有重要意义。

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