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Study on the online detection of atmospheric sulfur via laser-induced breakdown spectroscopy

机译:激光诱导击穿光谱法研究大气硫的在线检测

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摘要

The LIBS detection of sulfur presents particular difficulty because of the high excitation energy of sulfur element and the relative weakness of spectral tines. In this work, a novel laser-induced breakdown spectroscopy (LIBS) experimental apparatus has been developed for the direct detection of atmospheric sulfur. The measurement of atmospheric sulfur was performed in open air with a laser energy of 1000 mJ and ionic lines in the visible range were successfully observed. Moreover, experiments performed on the sample in different states demonstrated that ionic lines are more likely to appear in the detection of the gaseous sample than the liquid sample under same experimental conditions. In addition, the quantitative detection of sulfur was studied by performing LIBS detection on the standard DMS gas with different concentrations. Also, the calibration model of sulfur was established by fitting the intensity of the line and the concentration of sulfur compounds. The limit of detection (LOD) of LIBS in this work was calculated to be 46 mg L~(-1). Finally, the molecular structure of the sample was accurately determined via laser Raman spectroscopy with the assistance of first-principles calculation. All results showed that LIBS combined with Raman spectroscopy has great potential in the application of direct online detection of sulfur element in the atmosphere.
机译:由于硫元素的高兴奋能量和光谱型尖齿的相对弱点,Libs检测硫的检测特殊难度。在这项工作中,已经开发了一种新型激光诱导的击穿光谱(Libs)实验装置,用于直接检测大气硫。在透露空气中进行大气硫的测量,其中激光能量为1000mJ,并且成功地观察到可见范围中的离子系。此外,在不同状态下对样品进行的实验表明,离子系更可能在相同实验条件下比液态样品检测到气态样品的检测。此外,通过在具有不同浓度的标准DMS气体上进行LIBs检测来研究硫的定量检测。而且,通过拟合线的强度和硫化合物的浓度来建立硫的校准模型。本工作中的Libs的检测极限(LIB)计算为46mg L〜(-1)。最后,通过激光拉曼光谱通过激光拉曼光谱进行精确地确定样品的分子结构,通过第一原理计算。所有结果表明,Libs与拉曼光谱相结合,在大气中直接在线检测硫元素的应用具有很大的潜力。

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  • 来源
    《Journal of Analytical Atomic Spectrometry》 |2021年第5期|1028-1033|共6页
  • 作者

    Qihang Zhang; Yu Chen; Yuzhu Liu;

  • 作者单位

    Jiangsu Key Laboratory for Optoelectronic Detection of Atmosphere and Ocean Nanjing University of Information Science & Technology Nanjing 210044 China;

    Jiangsu Key Laboratory for Optoelectronic Detection of Atmosphere and Ocean Nanjing University of Information Science & Technology Nanjing 210044 China;

    Jiangsu Key Laboratory for Optoelectronic Detection of Atmosphere and Ocean Nanjing University of Information Science & Technology Nanjing 210044 China Shanghai Qizhi Institute Shanghai 200232 China Jiangsu Collaborative Innovation Center on Atmospheric Environment and Equipment Technology (CICAEET) Nanjing 210044 China;

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