首页> 外文期刊>Spectrochimica Acta, Part B. Atomic Spectroscopy >Determination of the elemental composition of micrometric and submicrometric particles levitating in a low pressure Radio-Frequency plasma discharge using Laser-Induced Breakdown Spectroscopy
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Determination of the elemental composition of micrometric and submicrometric particles levitating in a low pressure Radio-Frequency plasma discharge using Laser-Induced Breakdown Spectroscopy

机译:使用激光诱导击穿光谱法测定在低压射频等离子体放电中悬浮的微米级和亚微米级颗粒的元素组成

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摘要

The LIBS (Laser-Induced Breakdown Spectroscopy) technique has shown its potential in many fields of applications including that of aerosol analysis. The latter is usually carried out on the particle flow, thereby allowing quantitative detection in various experimental conditions such as ambient air analysis or exhaust stack monitoring, to name but a few. A possible alternative method for particle analysis has been experimented combining a low pressure RF (Radio-Frequency) plasma discharge with the LIBS technique. Such approach has two peculiar features in comparison to the usual LIBS analysis. First, the particles injected in the RF plasma discharge are trapped in levitation. Second, the analysis is performed at a reduced pressure of around 1 mbar. LIBS detection at such low pressure has this peculiarity that particle vaporization is assumed to be achieved through direct laser particle interaction whereas it is caused by laser-induced plasma ignited in the gas at atmospheric pressure. The use of such particle trap could allow improving particle sampling, making organic particle analysis possible (by using an inert gas for RF plasma ignition) and even (depending on the pressure) obtaining a better signal to noise ratio. Detection of the elements of nanoparticle agglomerates made following their injection in the RF discharge has demonstrated the feasibility of such approach. Future experiments are intended to explore its potentialities when tackling issues such as process control or ambient air monitoring.
机译:LIBS(激光诱导击穿光谱法)技术已显示出其在许多应用领域中的潜力,包括气溶胶分析领域。后者通常在颗粒流上进行,从而允许在各种实验条件下进行定量检测,例如环境空气分析或排气烟囱监测,仅举几例。已经尝试了将低压RF(射频)等离子体放电与LIBS技术结合起来进行粒子分析的一种可能的替代方法。与通常的LIBS分析相比,这种方法具有两个独特的特征。首先,在射频等离子体放电中注入的粒子被悬浮在悬浮状态。第二,在约1 mbar的减压下进行分析。在如此低的压力下进行LIBS检测具有这样的特性,即假定通过直接的激光粒子相互作用来实现粒子汽化,而这是由大气中在气体中点燃的激光诱导等离子体引起的。使用这种微粒捕集器可以改善微粒采样,使有机微粒分析成为可能(通过使用惰性气体进行RF等离子点火),甚至可以(取决于压力)获得更好的信噪比。纳米颗粒附聚物注入射频放电后制成的元素的检测证明了这种方法的可行性。未来的实验旨在探讨其在解决诸如过程控制或环境空气监测等问题时的潜力。

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