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Ion-induced sulfuric acid–ammonia nucleation drives particle formation in coastal Antarctica

机译:离子诱导的硫酸-氨成核作用驱动南极沿海地区的颗粒形成

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摘要

Formation of new aerosol particles from trace gases is a major source of cloud condensation nuclei (CCN) in the global atmosphere, with potentially large effects on cloud optical properties and Earth’s radiative balance. Controlled laboratory experiments have resolved, in detail, the different nucleation pathways likely responsible for atmospheric new particle formation, yet very little is known from field studies about the molecular steps and compounds involved in different regions of the atmosphere. The scarcity of primary particle sources makes secondary aerosol formation particularly important in the Antarctic atmosphere. Here, we report on the observation of ion-induced nucleation of sulfuric acid and ammonia—a process experimentally investigated by the CERN CLOUD experiment—as a major source of secondary aerosol particles over coastal Antarctica. We further show that measured high sulfuric acid concentrations, exceeding 107 molecules cm−3, are sufficient to explain the observed new particle growth rates. Our findings show that ion-induced nucleation is the dominant particle formation mechanism, implying that galactic cosmic radiation plays a key role in new particle formation in the pristine Antarctic atmosphere.
机译:由痕量气体形成的新气溶胶颗粒是全球大气中云凝结核(CCN)的主要来源,可能会对云的光学性质和地球的辐射平衡产生巨大影响。受控实验室实验已详细解决了可能导致大气中新粒子形成的不同成核途径,但是从关于大气中不同区域涉及的分子步骤和化合物的田间研究中了解得很少。初级粒子源的稀缺性使次级气溶胶的形成在南极大气中尤为重要。在这里,我们报告观察到离子诱导的硫酸和氨气成核现象(CERN CLOUD实验实验研究的过程),它是南极洲沿海次级气溶胶颗粒的主要来源。我们进一步表明,测得的高硫酸浓度超过10 7 分子cm -3 ,足以解释观察到的新颗粒生长速率。我们的发现表明,离子诱导的成核作用是主要的颗粒形成机制,这表明银河系宇宙辐射在原始南极大气中的新颗粒形成过程中起着关键作用。

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