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首页> 外文期刊>Frontiers of physics >On the improvement of signal repeatability in laser-induced air plasmas
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On the improvement of signal repeatability in laser-induced air plasmas

机译:改善激光诱导的空气等离子体中信号的重复性

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摘要

The relatively low repeatability of laser-induced breakdown spectroscopy (LIBS) severely hinders its wide commercialization. In the present work, we investigate the optimization of LIBS system for repeatability improvement for both signal generation (plasma evolution) and signal collection. Timeintegrated spectra and images were obtained under different laser energies and focal lengths to investigate the optimum configuration for stable plasmas and repeatable signals. Using our experimental setup, the optimum conditions were found to be a laser energy of 250 mJ and a focus length of 100 mm. A stable and homogeneous plasma with the largest hot core area in the optimum condition yielded the most stable LIBS signal. Time-resolved images showed that the rebounding processes through the air plasma evolution caused the relative standard deviation (RSD) to increase with laser energies of 250 mJ. In addition, the emission collection was improved by using a concave spherical mirror. The line intensities doubled as their RSDs decreased by approximately 25%. When the signal generation and collection were optimized simultaneously, the pulse-to-pulse RSDs were reduced to approximately 3% for O(I), N(I), and H(I) lines, which are better than the RSDs reported for solid samples and showed great potential for LIBS quantitative analysis by gasifying the solid or liquid samples.
机译:激光诱导击穿光谱法(LIBS)的相对较低的可重复性严重阻碍了其广泛的商业化。在当前的工作中,我们调查了LIBS系统的优化,以提高信号生成(血浆进化)和信号收集的可重复性。在不同的激光能量和焦距下获得时间积分光谱和图像,以研究稳定等离子体和可重复信号的最佳配置。使用我们的实验装置,发现最佳条件是250 mJ的激光能量和100 mm的焦距。在最佳条件下,具有最大热芯面积的稳定且均匀的等离子体产生了最稳定的LIBS信号。时间分辨图像显示,通过空气等离子体演化的回弹过程导致相对标准偏差(RSD)随着> 250 mJ的激光能量而增加。另外,通过使用凹面球面镜改善了发射收集。线强度增加了一倍,因为它们的RSD降低了约25%。当同时优化信号生成和收集时,O(I),N(I)和H(I)线的脉冲间RSD降低到大约3%,这比固体报告的RSD更好通过气化固体或液体样品,对LIBS定量分析具有很大的潜力。

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