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Aerosol-assisted synthesis of submicron particles at room temperature using ultra-fine liquid atomization

机译:使用超细液体雾化在室温下亚微米颗粒的气溶胶辅助合成

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摘要

Aerosol-assisted particle technologies are common in commercial atomizing devices for producing micron-sized droplets, which upon evaporation of solvent typically yield particles in the micron to submicron range obtained from a process of droplet-to-particle conversion. In this paper, we demonstrate a technology that allows room-temperature manufacturing of particles O(100-500) nm in diameter by generating and drying of submicron droplet aerosols. As measured for water atomization, the produced droplets of O(200) nm in mean diameter are an order of magnitude smaller than 3-5 mu m water droplets usually obtained from commercial atomizers and nebulizers. This reduction in droplet size promotes evaporation of solvent around two orders of magnitude faster than for the droplets produced by conventional atomization devices. Such rapid solvent evaporation enables formation of submicron particles even in the limit of room temperature drying conditions in a compact laboratory- scale setup, as we demonstrate in this study for sodium chloride and silica and titania xerogel particles. Ultra-fine diameters of the generated droplets enable the usage of more concentrated precursor solutions, e.g. ten or even one hundred times, to obtain the same final particle size as conventional aerosol-assisted setups. Based on the experimental study, we establish mathematical expressions correlating the mean particle size and production capacity with solute concentration in the precursor, physical properties of the solution and the atomizing air pressure. Finally, we compare and demonstrate the advantages of the developed system over the existing aerosol-assisted processes in terms of smaller particle size, larger overall and specific production capacities, and higher estimated energy efficiency. The results suggest that this economical and scalable method can be utilized for aerosol-assisted submicron particle synthesis in different applications.
机译:气溶胶辅助颗粒技术在商业雾化装置中是常见的,用于产生微米尺寸液滴,其在蒸发溶剂时通常在微米中产生颗粒到从液滴到颗粒转化的过程中获得的亚微米范围。在本文中,我们证明了一种技术,可以通过产生和干燥亚微米液滴气溶胶来室温制造直径颗粒O(100-500)Nm。如图所测量的水雾化,平均直径的o(200)nm的产生的液滴是通常从商业雾化器和雾化器获得的3-5μm水滴的数量级。这种液滴尺寸的降低促进溶剂的蒸发,比常规雾化装置产生的液滴快约两个数量级。这种快速溶剂蒸发使得亚微米颗粒的形成即使在紧凑的实验室规模的设置中,也可以在室温干燥条件的极限中,因为我们在本研究氯化钠和二氧化硅和二氧化钛Xerogel颗粒中的研究中表明。产生的液滴的超细直径使得能够使用更多浓缩的前体溶液,例如,使用更浓缩的前体溶液。十或甚至百次,以获得与常规气溶胶辅助设置相同的最终粒度。基于实验研究,我们建立了在前体中具有溶质浓度的平均粒度和生产能力的数学表达,溶液的物理性质和雾化气压。最后,我们在较小的粒度,更大的整体和特定生产能力方面进行比较和展示发达系统对现有的气溶胶辅助工艺的优点,以及更高的估计能效。结果表明,这种经济型和可扩展的方法可用于在不同应用中的气溶胶辅助亚微米粒子合成中。

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