Fast synthesis of gold nanoparticles by cold atmospheric pressure plasma jet in the presence of Au+ ions and a capping agent

T. Habib, J. A. M. Caiut, Bruno Caillier
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Abstract

Homogeneous gold nanoparticles were synthesized under atmospheric pressure using a non-thermal helium plasma jet in a single-step process. A current power supply was used to generate the plasma discharge rich in diverse reactive species. These species induce rapid chemical reactions responsible for the reduction of the gold salts upon contact with the liquid solution. In this study, spherical and monodispersed gold nanoparticles were obtained within 5 min of plasma exposure using a solution containing Gold (III) chloride hydrate (HAuCl4) as a precursor and Polyvinylpyrrolidone (PVP) as a capping agent to inhibit agglomerations. The formation of these metal nanoparticles was initially perceptible through a visible change in the sample’s color, transitioning from light yellow to a red/pink color. This was subsequently corroborated by UV-vis spectroscopy, which revealed an optical absorption in the 520 - 550 nm range for AuNPs, corresponding to the surface plasmon resonance (SPR) band. An investigation into the impact of various parameters, including plasma discharge duration, precursor and capping agent concentrations, was carried out to optimize conditions for the formation of well-separated, spherical gold nanoparticles. Dynamic light scattering (DLS) was used to measure the size of these nanoparticles, transmission electron microscopy (TEM) was used to observe their morphology and X-ray diffraction (XRD) was also employed to determine their crystallographic structure. The results confirm that homogeneous spherical gold nanoparticles with an average diameter of 13 nm can be easily synthesized through a rapid, straightforward, and environmentally friendly approach utilizing a helium atmospheric pressure plasma.
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在 Au+ 离子和封盖剂存在下通过冷大气压等离子体射流快速合成金纳米粒子
在大气压力下,利用非热氦等离子体射流一步合成了均质金纳米粒子。使用电流电源产生等离子体放电,其中富含多种反应物。这些物质在与液态溶液接触时会引起金盐还原的快速化学反应。在这项研究中,使用含有氯化金(III)水合物(HAuCl4)的溶液作为前驱体,并使用聚乙烯吡咯烷酮(PVP)作为封端剂以抑制团聚,在等离子照射 5 分钟内获得了球形和单分散金纳米粒子。这些金属纳米粒子的形成最初是通过样品颜色的可见变化来感知的,从浅黄色过渡到红/粉红色。随后,紫外-可见光谱证实了这一点,该光谱显示 AuNPs 在 520 - 550 nm 范围内有光吸收,与表面等离子体共振 (SPR) 波段相对应。对等离子放电持续时间、前驱体和封盖剂浓度等各种参数的影响进行了研究,以优化形成分离良好的球形金纳米粒子的条件。使用动态光散射(DLS)测量了这些纳米粒子的尺寸,使用透射电子显微镜(TEM)观察了它们的形态,还使用 X 射线衍射(XRD)确定了它们的晶体结构。结果证实,利用氦气常压等离子体,可以通过快速、直接和环保的方法轻松合成平均直径为 13 纳米的均匀球形金纳米粒子。
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