Impact of Micropulse and Radio Frequency Coupling in an Atmospheric Pressure Plasma Jet on the Synthesis of Gold Nanoparticles

IF 2.6 3区 物理与天体物理 Q3 ENGINEERING, CHEMICAL Plasma Chemistry and Plasma Processing Pub Date : 2023-10-13 DOI:10.3390/plasma6040043
Tatiana Habib, Ludovica Ceroni, Alessandro Patelli, José Mauricio Almeida Caiut, Bruno Caillier
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Abstract

Gold nanoparticles have been extensively studied due to their unique optical and electronic properties which make them attractive for a wide range of applications in biomedicine, electronics, and catalysis. Over the past decade, atmospheric pressure plasma jets in contact with a liquid have emerged as a sustainable and environmentally friendly approach for synthesizing stable and precisely controlled dispersions. Within the context of plasma jet/liquid configurations, researchers have explored various power sources, ranging from kHz frequencies to nanopulse regimes. In this study, we investigated the effects of coupling two distinct power supplies: a high-voltage micropulse and a radio frequency (RF) generator. The variations within the plasma induced by this coupling were explored by optical and electrical measurements. Our findings indicated a transition from a bullet plasma propagation mechanism to a capacitive coupling mechanism upon the introduction of RF energy. The impact on the production of metal nanoparticles was also examined as a function of the radio frequency power and of two distinct process gases, namely helium and argon. The characterization of gold nanoparticles included UV-visible spectroscopy, dynamic light scattering, and scanning electron microscopy. The results showed that the size distribution depended on the type of process gas used and on the power supplies coupling. In particular, the incorporation of RF power alongside the micropulse led to a decrease in both average particle size and distribution width. The comparison of the different set up suggested that the current density can influence the particle size distribution, highlighting the potential advantages of the use of a dual-frequency atmospheric pressure plasma jet configuration.
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大气压等离子体射流中微脉冲和射频耦合对金纳米颗粒合成的影响
金纳米粒子由于其独特的光学和电子特性,在生物医学、电子和催化等领域有着广泛的应用,因此受到了广泛的研究。在过去的十年中,大气压等离子体射流与液体接触已经成为一种可持续和环保的方法,用于合成稳定和精确控制的分散体。在等离子体射流/液体结构的背景下,研究人员已经探索了各种各样的电源,从千赫频率到纳米脉冲体制。在这项研究中,我们研究了耦合两个不同电源的影响:高压微脉冲和射频(RF)发生器。通过光学和电学测量,探索了由这种耦合引起的等离子体内部的变化。我们的研究结果表明,在引入射频能量后,从子弹等离子体传播机制转变为电容耦合机制。对金属纳米颗粒生产的影响也作为射频功率和两种不同工艺气体,即氦气和氩气的函数进行了研究。金纳米颗粒的表征包括紫外可见光谱、动态光散射和扫描电子显微镜。结果表明,其尺寸分布与所用工艺气体类型和电源耦合有关。特别是,射频功率与微脉冲的结合导致平均粒径和分布宽度的减小。不同设置的比较表明,电流密度可以影响颗粒尺寸分布,突出了使用双频大气压等离子体射流配置的潜在优势。
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来源期刊
Plasma Chemistry and Plasma Processing
Plasma Chemistry and Plasma Processing 工程技术-工程:化工
CiteScore
5.90
自引率
8.30%
发文量
73
审稿时长
6-12 weeks
期刊介绍: Publishing original papers on fundamental and applied research in plasma chemistry and plasma processing, the scope of this journal includes processing plasmas ranging from non-thermal plasmas to thermal plasmas, and fundamental plasma studies as well as studies of specific plasma applications. Such applications include but are not limited to plasma catalysis, environmental processing including treatment of liquids and gases, biological applications of plasmas including plasma medicine and agriculture, surface modification and deposition, powder and nanostructure synthesis, energy applications including plasma combustion and reforming, resource recovery, coupling of plasmas and electrochemistry, and plasma etching. Studies of chemical kinetics in plasmas, and the interactions of plasmas with surfaces are also solicited. It is essential that submissions include substantial consideration of the role of the plasma, for example, the relevant plasma chemistry, plasma physics or plasma–surface interactions; manuscripts that consider solely the properties of materials or substances processed using a plasma are not within the journal’s scope.
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