Multiphase Buffering by Ammonia Sustains Sulfate Production in Atmospheric Aerosols

IF 8.3 Q1 GEOSCIENCES, MULTIDISCIPLINARY AGU Advances Pub Date : 2024-07-22 DOI:10.1029/2024AV001238
Guangjie Zheng, Hang Su, Meinrat O. Andreae, Ulrich Pöschl, Yafang Cheng
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Abstract

Multiphase oxidation of sulfur dioxide (SO2) is an important source of sulfate in the atmosphere. There are, however, concerns that protons produced during SO2 oxidation may cause rapid acidification of aerosol water and thereby quickly shut down the fast reactions favored at high pH. Here, we show that the sustainability of sulfate production is controlled by the competing effects of multiphase buffering and acidification, which can be well described by a characteristic buffering time, τbuff. Both GEOS-Chem simulations and observations show that globally, τbuff is long enough (days) to sustain sulfate production over most populated regions, where the acidification of aerosol water is counteracted by the strong buffering effect of NH4+/NH3. Our results highlight the importance of anthropogenic ammonia emissions and pervasive human influences in shaping the chemical environment of the atmosphere.

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氨的多相缓冲作用可维持大气气溶胶中硫酸盐的生成
二氧化硫(SO2)的多相氧化是大气中硫酸盐的重要来源。然而,人们担心二氧化硫氧化过程中产生的质子可能会导致气溶胶水迅速酸化,从而迅速关闭在高 pH 值条件下的快速反应。在这里,我们展示了硫酸盐生成的可持续性是由多相缓冲和酸化的竞争效应控制的,这可以用一个特征缓冲时间τbuff来很好地描述。GEOS-Chem 模拟和观测结果都表明,在全球范围内,τbuff 足够长(数天),足以维持大多数人口稠密地区的硫酸盐生成,其中气溶胶水的酸化作用被 NH4+/NH3 的强大缓冲作用所抵消。我们的研究结果凸显了人为氨排放和人类的普遍影响在塑造大气化学环境方面的重要性。
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