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首页> 外文期刊>Applied Spectroscopy: Society for Applied Spectroscopy >Enhancement of Laser-Induced Breakdown Spectroscopy (LIBS) Detection Limit Using a Low-Pressure and Short-Pulse Laser-Induced Plasma Process
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Enhancement of Laser-Induced Breakdown Spectroscopy (LIBS) Detection Limit Using a Low-Pressure and Short-Pulse Laser-Induced Plasma Process

机译:使用低压短脉冲激光诱导等离子体工艺增强激光诱导击穿光谱(LIBS)检测极限

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Laser-induced breakdown spectroscopy (LIBS) technology is an appealing technique compared with many other types of elemental analysis because of the fast response, high sensitivity, real-time, and noncontact features. One of the challenging targets of LIBS is the enhancement of the detection limit. In this study, the detection limit of gas-phase LIBS analysis has been improved by controlling the pressure and laser pulse width. In order to verify this method, low-pressure gas plasma was induced using nanosecond and picosecond lasers. The method was applied to the detection of Hg. The emission intensity ratio of the Hg atom to NO (I_(Hg)/I_(NO)) was analyzed to evaluate the LIBS detection limit because the NO emission (interference signal) was formed during the plasma generation and cooling process of N_2 and O_2 in the air. It was demonstrated that the enhancement of I_(Hg)/I_(NO) arose by decreasing the pressure to a few kilopascals, and the I_(Hg)/I_(NO) of the picosecond breakdown was always much higher than that of the nanosecond breakdown at low buffer gas pressure. Enhancement of I_(Hg)/I_(NO) increased more than 10 times at 700 Pa using picosecond laser with 35 ps pulse width. The detection limit was enhanced to 0.03 ppm (parts per million). We also saw that the spectra from the center and edge parts of plasma showed different features. Comparing the central spectra with the edge spectra, I_(Hg)/I_(NO) of the edge spectra was higher than that of the central spectra using the picosecond laser breakdown process.
机译:与许多其他类型的元素分析相比,激光诱导击穿光谱法(LIBS)技术具有吸引力,因为它具有快速响应,高灵敏度,实时和非接触的特点。 LIBS的挑战性目标之一是提高检测限。在这项研究中,通过控制压力和激光脉冲宽度提高了气相LIBS分析的检测限。为了验证该方法,使用纳秒和皮秒激光诱导了低压气体等离子体。该方法用于汞的检测。分析了Hg原子与NO的发射强度比(I_(Hg)/ I_(NO)),以评估LIBS检测极限,因为在N_2和O_2的等离子体生成和冷却过程中形成了NO发射(干扰信号)在空中。结果表明,通过将压力降低到几千帕斯卡,I_(Hg)/ I_(NO)的提高得以实现,皮秒击穿的I_(Hg)/ I_(NO)始终比纳秒级的高得多。在低缓冲气体压力下击穿。使用35 ps脉冲宽度的皮秒激光,在700 Pa下,I_(Hg)/ I_(NO)的增强增加了10倍以上。检出限提高到0.03 ppm(百万分之一)。我们还看到,等离子体中心和边缘部分的光谱显示出不同的特征。将中心光谱与边缘光谱进行比较,使用皮秒激光击穿过程,边缘光谱的I_(Hg)/ I_(NO)高于中心光谱。

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