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亚微米气溶胶中液-液相分离的动力学。

Dynamics of Liquid-Liquid Phase Separation in Submicrometer Aerosol.

机构信息

Department of Chemistry, The Pennsylvania State University, University Park, Pennsylvania 16802, United States.

出版信息

J Phys Chem A. 2021 May 27;125(20):4446-4453. doi: 10.1021/acs.jpca.1c01985. Epub 2021 May 17.

Abstract

Nanoscale materials, when compared to their bulk components, possess unique properties. In particular, shifts in phase transitions can occur for submicrometer particles. For instance, small particles do not undergo the process of liquid-liquid phase separation (LLPS). LLPS has applications in emulsions such as Janus particles, controllable morphology to create drug-rich phases during drug delivery, and is often observed in atmospheric aqueous aerosol particles. In atmospheric particles, LLPS is tracked as a function of particle water activity, which is equivalent to the relative humidity (RH) at equilibrium. We probed three organic/inorganic aerosol systems in the range of RH over which phase separation occurs (SRH). Our findings indicate that SRH for submicrometer aerosol particles is lower than for micrometer-sized droplets. These findings show that it may be necessary to update the representation of phase transitions in aerosol particles in climate models. The vast majority of organic/inorganic aerosol particles have submicrometer diameters, and a decrease in SRH for submicrometer particles indicates that the current estimation of phase-separated aerosols may be overestimated. Furthermore, understanding the properties of LLPS at the nanoscale can provide key parameters to describe these systems and may lead to better control of phase separation in submicrometer particles.

摘要

与体相材料相比,纳米材料具有独特的性质。特别是,亚微米颗粒会发生相变转变。例如,小颗粒不会经历液-液相分离(LLPS)过程。LLPS 在乳液中具有应用,例如 Janus 颗粒、可控形态以在药物输送过程中产生富含药物的相,并且经常在大气水气溶胶颗粒中观察到。在大气颗粒中,LLPS 作为颗粒水活度的函数进行跟踪,水活度相当于平衡时的相对湿度(RH)。我们在发生相分离的 RH 范围内(SRH)探测了三种有机/无机气溶胶系统。我们的研究结果表明,亚微米气溶胶颗粒的 SRH 低于微米大小的液滴。这些发现表明,可能需要更新气候模型中气溶胶颗粒相变的表示。绝大多数有机/无机气溶胶颗粒的直径都小于亚微米,而亚微米颗粒的 SRH 降低表明,目前对相分离气溶胶的估计可能过高。此外,了解纳米尺度上的 LLPS 性质可以提供描述这些系统的关键参数,并可能导致更好地控制亚微米颗粒中的相分离。

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