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Resolving the mechanisms of hygroscopic growth and cloud condensation nuclei activity for organic particulate matter

机译:解决有机颗粒物的吸湿生长和云凝结核活性的机制

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摘要

Hygroscopic growth and cloud condensation nuclei activation are key processes for accurately modeling the climate impacts of organic particulate matter. Nevertheless, the microphysical mechanisms of these processes remain unresolved. Here we report complex thermodynamic behaviors, including humidity-dependent hygroscopicity, diameter-dependent cloud condensation nuclei activity, and liquid–liquid phase separation in the laboratory for biogenically derived secondary organic material representative of similar atmospheric organic particulate matter. These behaviors can be explained by the non-ideal mixing of water with hydrophobic and hydrophilic organic components. The non-ideality-driven liquid–liquid phase separation further enhances water uptake and induces lowered surface tension at high relative humidity, which result in a lower barrier to cloud condensation nuclei activation. By comparison, secondary organic material representing anthropogenic sources does not exhibit complex thermodynamic behavior. The combined results highlight the importance of detailed thermodynamic representations of the hygroscopicity and cloud condensation nuclei activity in models of the Earth’s climate system.
机译:吸湿性增长和云凝结核的激活是精确模拟有机颗粒物对气候影响的关键过程。然而,这些过程的微物理机制仍未解决。在这里,我们报告了复杂的热力学行为,包括与湿度有关的吸湿性,与直径有关的云凝结核活性以及在实验室中由生物衍生的次生有机材料代表的类似大气有机颗粒物的液相分离。这些行为可以通过水与疏水性和亲水性有机成分的不理想混合来解释。非理想驱动的液-液相分离进一步提高了水的吸收,并在较高的相对湿度下引起了较低的表面张力,从而降低了对云凝结核活化的障碍。相比之下,代表人为来源的次生有机材料没有表现出复杂的热力学行为。合并的结果凸显了在地球气候系统模型中详细描述吸湿性和云凝结核活动的热力学表示的重要性。

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