Precise alignment of the collection fiber assisted by real-time plasma imaging in laser-induced breakdown spectroscopy

Improving the repeatability and the reproducibility of measurement with laser-induced breakdown spectroscopy (LIBS) is one of the actual challenging issues faced by the technique to fit the requirements of precise and accurate quantitative analysis. Among the numerous factors influencing the measure...

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Veröffentlicht in:Spectrochimica acta. Part B: Atomic spectroscopy 2014-02, Vol.92, p.60-69
Hauptverfasser: Motto-Ros, V., Negre, E., Pelascini, F., Panczer, G., Yu, J.
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Sprache:eng
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Zusammenfassung:Improving the repeatability and the reproducibility of measurement with laser-induced breakdown spectroscopy (LIBS) is one of the actual challenging issues faced by the technique to fit the requirements of precise and accurate quantitative analysis. Among the numerous factors influencing the measurement stability in short and long terms, there are shot-to-shot and day-to-day fluctuations of the morphology of the plasma. Such fluctuations are due to the high sensitivity of laser-induced plasma to experimental conditions including properties of the sample, the laser parameters as well as properties of the ambient gas. In this paper, we demonstrate that precise alignment of the optical fiber for the collection of the plasma emission with respect to the actual morphology of the plasma assisted by real-time imaging, greatly improves the stability of LIBS measurements in short as well as in long terms. The used setup is based on a plasma imaging arrangement using a CCD camera and a real-time image processing. The obtained plasma image is displayed in a 2-dimensional frame where the position of the optical fiber is beforehand calibrated. In addition, the setup provides direct sample surface monitoring, which allows a precise control of the distance between the focusing lens and the sample surface. Test runs with a set of 8 reference samples show very high determination coefficient for calibration curves (R2=0.9999), and a long term repeatability and reproducibility of 4.6% (relative standard deviation) over a period of 3months without any signal normalization. The capacity of the system to automatically correct the sample surface position for a tilted or non-regular sample surface during a surface mapping measurement is also demonstrated. •Automated alignment of the collection fiber by real-time plasma imaging•High level control of experimental parameters in LIBS experiments•Improvement of the short and long term stability in LIBS measurements•Real-time visualization and determination of the plasma properties
ISSN:0584-8547
1873-3565
DOI:10.1016/j.sab.2013.12.008