新型热解吸装置耦合光化学电离质谱检测颗粒物中多环芳烃

Detection of PAHs in Particulate Matter Using a Novel Thermal Desorption Device Coupled with Photochemical Ionization Mass Spectrometry

  • 摘要: PM2.5作为当前我国最普遍的一种污染物,严重威胁人体呼吸、循环及神经系统的健康,尤其PM2.5中沸点高于200 ℃的高毒性化合物难以检测,潜在的毒性风险更高。针对上述问题,本工作研制了一种快速热解吸装置,通过与本课题组自主研发的光化学电离质谱耦合,实现了PM2.5中萘、苊烯以及芴等3种常见多环芳烃(PAHs)的快速分析,单次检测时间少于5 min。以PAHs的分子离子峰作为特征峰,线性范围可达2~2 000 ng,检测限分别低至0.021、0.36、0.68 ng。将该装置用于停车场以及吸烟室中实际颗粒物样本成分分析,对比商品化气相与颗粒相接口(FIGAERO)检测的实际样品谱图,本装置输出谱图的出峰数增加了202个,最高峰强度提升了727.42倍,保证了实际颗粒物样品中痕量PAHs成分的准确识别与定量评估,在颗粒物成分分析领域展现出巨大潜力,拥有广阔的发展与应用前景。

     

    Abstract: PM2.5 is a significant pollutant that seriously threatens human respiratory, circulatory, and nervous systems. Despite the deepening research, the PM2.5 analysis still faces challenges, with a number of the components not having been detected and identified. These hard-to-detect components are primarily semi- or medium-volatile organic compounds with boiling points above 200 ℃. The commercial filter inlet for gases and AEROsols (FIGAERO) applied to PM2.5 detection has key bottleneck problems, such as insufficient heating power and poor airtightness. In this work, a rapid thermal desorption device was developed, coupled to a home-made photochemical ionization mass spectrometer (CIMS), with a detection time within 5 min. The self-designed thermal desorption device applies high-power mica sheets for heating, which can stably maintain a heating temperature of 300 ℃ to ensure the complete desorption of polycyclic aromatic hydrocarbons (PAHs) in particulate matter. Using this device, three common PAHs, naphthalene, acenaphthylene, and fluorene in PM2.5 were rapidly analyzed. The molecular ion peak of PAHs was used as the characteristic peak, with the linear range of 2-2 000 ng and the detection limit of 0.021, 0.36 and 0.68 ng, respectively. Most importantly, the device was used to analyze the components of actual particulate samples collected from car park and smoking room. Within m/z 0-300, the number of peaks was determined using a threshold of a signal-to-noise ratio of >3, with the background signal of the blank film considered as noise. Using the self-designed device, the characteristic peak counts for particulate samples of car park and smoking gas samples were 182, 202, respectively. In contrast, the characteristic peak count for particulate samples of car park using FIGAERO was only 23, and no characteristic peak was observed for smoking gas particle samples. Therefore, compared with FIGAERO, the self-designed thermal desorption device coupled with photochemical ionization mass spectrometry has a highly significant advantage and can achieve quantitative detection of trace PAHs in particulate matter. This device demonstrates significant potential and broad development prospects in the field of particulate matter analysis.

     

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