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Molecular identification of organic vapors driving atmospheric nanoparticle growth

机译:驱动大气纳米粒子生长的有机蒸气的分子鉴定

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摘要

Particles formed in the atmosphere via nucleation provide about half the number of atmospheric cloud condensation nuclei, but in many locations, this process is limited by the growth of the newly formed particles. That growth is often via condensation of organic vapors. Identification of these vapors and their sources is thus fundamental for simulating changes to aerosol-cloud interactions, which are one of the most uncertain aspects of anthropogenic climate forcing. Here we present direct molecular-level observations of a distribution of organic vapors in a forested environment that can explain simultaneously observed atmospheric nanoparticle growth from 3 to 50 nm. Furthermore, the volatility distribution of these vapors is sufficient to explain nanoparticle growth without invoking particle-phase processes. The agreement between observed mass growth, and the growth predicted from the observed mass of condensing vapors in a forested environment thus represents an important step forward in the characterization of atmospheric particle growth.
机译:通过成核作用在大气中形成的颗粒提供了大约一半的大气云凝结核,但是在许多位置,此过程受到新形成颗粒生长的限制。这种增长通常是通过有机蒸气的冷凝来实现的。因此,识别这些蒸气及其来源是模拟气溶胶-云相互作用变化的基础,而气溶胶-云相互作用是人为气候强迫的最不确定的方面之一。在这里,我们介绍森林环境中有机蒸气分布的直接分子水平观察结果,可以同时解释从3至50nm的大气纳米颗粒的生长。此外,这些蒸气的挥发性分布足以解释纳米粒子的生长而无需调用粒子相过程。因此,在森林环境中观测到的质量增长与根据观测到的冷凝蒸汽质量预测的增长之间的一致性代表了大气颗粒生长表征中的重要一步。

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