Mechanism behind the Controlled Generation of Liquid Metal Nanoparticles by Mechanical Agitation

超声 镓 表面张力 材料科学 纳米颗粒 粒径 液态金属 铋 化学工程 金属 锡 粒子(生态学) 纳米技术 复合材料 冶金 热力学 工程类 地质学 物理 海洋学
作者
Nur‐Adania Nor‐Azman,Mohammad B. Ghasemian,Richard Fuchs,Li Liu,Moonika Sari Widjajana,Ruohan Yu,Shih‐Hao Chiu,Shuhada A. Idrus‐Saidi,Nieves Flores,Yuan Chi,Jianbo Tang,Kourosh Kalantar‐Zadeh
出处
期刊:ACS Nano [American Chemical Society]
卷期号:18 (17): 11139-11152 被引量:31
标识
DOI:10.1021/acsnano.3c12638
摘要

The size-controlled synthesis of liquid metal nanoparticles is necessary in a variety of applications. Sonication is a common method for breaking down bulk liquid metals into small particles, yet the influence of critical factors such as liquid metal composition has remained elusive. Our study employs high-speed imaging to unravel the mechanism of liquid metal particle formation during mechanical agitation. Gallium-based liquid metals, with and without secondary metals of bismuth, indium, and tin, are analyzed to observe the effect of cavitation and surface eruption during sonication and particle release. The impact of the secondary metal inclusion is investigated on liquid metals' surface tension, solution turbidity, and size distribution of the generated particles. Our work evidences that there is an inverse relationship between the surface tension and the ability of liquid metals to be broken down by sonication. We show that even for 0.22 at. % of bismuth in gallium, the surface tension is significantly decreased from 558 to 417 mN/m (measured in Milli-Q water), resulting in an enhanced particle generation rate: 3.6 times increase in turbidity and ∼43% reduction in the size of particles for bismuth in gallium liquid alloy compared to liquid gallium for the same sonication duration. The effect of particles' size on the photocatalysis of the annealed particles is also presented to show the applicability of the process in a proof-of-concept demonstration. This work contributes to a broader understanding of the synthesis of nanoparticles, with controlled size and characteristics, via mechanical agitation of liquid metals for diverse applications.
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