Hedwig Rinda, Tanra Ivan, Karnadi Indra, Pardede Marincan, Marpaung Alion Mangasi, Lie Zener Sukra, Kurniawan Koo Hendrik, Suliyanti Maria Margaretha, Lie Tjung Jie, Kagawa Kiichiro
Opt Express. 2020 Mar 30;28(7):9259-9268. doi: 10.1364/OE.387946.
A unique approach for achieving total suppression of the self-absorption effect in laser-induced breakdown spectroscopy (LIBS) has been demonstrated employing a previously published technique of laser-induced plasma spectroscopy utilizing a helium (He) metastable excited state (LIPS-He*).This achievement was attained by the use of the He metastable excited state (He*) and a Penning-like energy transfer mechanism for the delayed excitation of the ablated analyte atoms. KCl and NaCl samples showed the disappearance of the self-absorption emission lines of K I 766.4 nm, K I 769.9 nm, Na I 588.9 nm, and Na I 589.5 nm, and the FWHM values of K I 766.4 and Na I 588.9 nm were found to be 0.8 nm and 0.15 nm, respectively, by LIPS-He* as compared to 4.8 nm and 1.4 nm, respectively, by single-laser operation. A standard Al sample also showed the total disappearance of the self-absorption emission lines Al I 394.4 nm and Al I 396.1 nm. The FWHM of Al I 396.1 nm was 0.12 nm when LIPS-He* was employed compared to 0.44 nm when a single laser was used. A remarkable linear calibration line with zero intercepts was also obtained for high-concentration Al samples (87.0%, 93.0% and 99.8%). Thus, it is established that the self-absorption effect can be completely neglected when excitation through He* is employed in LIBS.
利用先前发表的一种利用氦(He)亚稳态激发态的激光诱导等离子体光谱技术(LIPS-He*),已经证明了一种实现激光诱导击穿光谱(LIBS)中自吸收效应完全抑制的独特方法。这一成果是通过使用He亚稳态激发态(He*)和一种类似潘宁效应的能量转移机制来延迟烧蚀分析物原子的激发而实现的。KCl和NaCl样品中,KI 766.4 nm、KI 769.9 nm、NaI 588.9 nm和NaI 589.5 nm的自吸收发射线消失,通过LIPS-He测得KI 766.4和NaI 588.9 nm的半高宽(FWHM)值分别为0.8 nm和0.15 nm,而单激光操作时分别为4.8 nm和1.4 nm。标准Al样品中,AlI 394.4 nm和AlI 396.1 nm的自吸收发射线也完全消失。采用LIPS-He时,AlI 396.1 nm的FWHM为0.12 nm,而使用单激光时为0.44 nm。对于高浓度Al样品(87.0%、93.0%和99.8%),还获得了一条截距为零的显著线性校准曲线。因此,可以确定,在LIBS中采用通过He*激发时,自吸收效应可以完全忽略。