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首页> 外文期刊>Talanta: The International Journal of Pure and Applied Analytical Chemistry >Quantification of volatile PAHs present at trace levels in air flow by aqueous trapping-SPE and HPLC analysis with fluorimetric detection
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Quantification of volatile PAHs present at trace levels in air flow by aqueous trapping-SPE and HPLC analysis with fluorimetric detection

机译:通过水相捕集SPE和HPLC分析和荧光检测定量分析空气中痕量水平的挥发性PAH

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摘要

In the context of a European project,a new approach of sampling of volatile polycyclic aromatic hydrocarbons(PAHs)from air was developed.In fact,the aim of this project was to test the efficiency of an air cleansing prototype reactor,which was operating by non-thermal plasmolysis.With an eye to model the atmosphere ejected by the prototype,we needed to vaporise the volatile PAHs in an air stream at concentrations as low as those recommended by European Directives(96/62/CE)for PAHs in ambient air(i.e.1 ng m~(-3)).Our strategy was based on the analysis of PAHs trapped in an aqueous medium,in order to avoid important losses of volatile compounds observed during the delicate desorption-concentration step when classical solid supports are used.Then a study was carried out to determine:the design of the collecting part,the flow-rate of the air sampling,the nature and concentration of chemical additives used to enhance PAH solubility in water.The very highly diluted aqueous media obtained after the bubbling step were concentrated by solid-phase extraction(SPE)on hydrophobic cartridges and analysed on-line by reversed-phase HPLC with UV and fluorimetric detections.Lastly,the sampling technique was directly applied to the outlet of the air cleansing prototype and the analysis after 3-6 h of non-thermal plasmolysis showed that the target volatile PAHs were not present in an air stream initially polluted by volatile organic compounds.
机译:在欧洲项目的背景下,开发了一种从空气中采样挥发性多环芳烃(PAHs)的新方法。实际上,该项目的目的是测试空气净化原型反应器的效率,该反应器由为了模拟原型喷射出的大气,我们需要蒸发空气中的挥发性多环芳烃,其浓度应低于欧洲指令(96/62 / CE)对周围空气中多环芳烃的推荐浓度(ie1 ng m〜(-3))。我们的策略是基于对捕获在水性介质中的PAHs的分析,以避免使用传统的固体载体时,在精细的解吸浓缩步骤中观察到的挥发性化合物大量损失然后进行了一项研究,以确定:收集部分的设计,空气采样的流量,用于增强PAH在水中的溶解度的化学添加剂的性质和浓度。鼓泡步骤通过固相萃取(SPE)在疏水柱上进行浓缩,然后通过反相HPLC进行在线分析,并进行UV和荧光检测。最后,将采样技术直接应用于空气净化样机的出口和在3-6小时的非热等离子体分解后的分析表明,目标气流中的挥发性PAHs不存在,最初被挥发性有机化合物污染。

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