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首页> 外文期刊>Spectrochimica Acta, Part B. Atomic Spectroscopy >Quantification of the intensity enhancements for the double-pulse laser-induced breakdown spectroscopy in the orthogonal beam geometry
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Quantification of the intensity enhancements for the double-pulse laser-induced breakdown spectroscopy in the orthogonal beam geometry

机译:正交光束几何中双脉冲激光诱导击穿光谱强度增强的量化

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Simple- and double-pulse laser-induced breakdown spectroscopy was studied on aluminum samples at atmospheric pressure in air. The double-pulse experiments were carried out in the orthogonal beam geometry in two different ways: the reheating scheme and the pre-ablation spark dual-pulse scheme. An ablation laser emitting at 532 nm was combined with a second laser operating at 1064 nm according to the orthogonal geometry. For both schemes, the influence of the delay between the two laser pulses was investigated. In particular, different optima of interpulse delays were determined, underlying the differences of physical mechanisms involved in both processes. The estimation of the plasma temperatures provided explanations on the signal increases for both schemes. Whatever the configuration developed in the orthogonal geometry, a correlation between the increases in emission lines intensities and their excitation energy levels was established in the double-pulse approach. Besides, the effect of laser energy for both pulses was studied so as to make comparisons of the different configurations at the same total laser energy. (c) 2005 Elsevier B.V All rights reserved.
机译:在大气中的大气压下对铝样品进行了单脉冲和双脉冲激光诱导击穿光谱研究。在正交射束几何中以两种不同方式进行了双脉冲实验:再加热方案和预烧蚀火花双脉冲方案。根据正交几何形状,将在532 nm处发射的消融激光器与在1064 nm处工作的第二激光器组合。对于这两种方案,都研究了两个激光脉冲之间的延迟的影响。尤其是,确定了不同的脉冲间断最佳时间,这是两个过程所涉及的物理机制不同的根本原因。等离子体温度的估计为两种方案的信号增加提供了解释。无论在正交几何中发展出何种构型,在双脉冲方法中都建立了发射线强度的增加与其激发能级之间的相关性。此外,研究了两个脉冲激光能量的影响,以便在相同的总激光能量下比较不同配置。 (c)2005 Elsevier B.V保留所有权利。

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