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High spatial resolution in laser-induced breakdown spectroscopy of expanding plasmas

机译:扩展等离子体的激光诱导击穿光谱中的高空间分辨率

摘要

We report a technique that is able to achieve high spatial resolution in the measurement of the temporal and spectral emission characteristics of laser-induced expanding plasmas. The plasma is imaged directly onto the slit of an imaging spectrograph coupled to a time-gated intensified camera, with the plasma expansion direction being parallel to the slit extension. In this way, a single hybrid detection system is used to acquire the spatial, spectral and temporal characteristics of the laser induced plasma. The parallel acquisition approach of this technique ensures a much better spatial resolution in the expansion direction, reproducibility and data acquisition speed than commonly obtained by sequential measurements at different distances from the target. We have applied this technique to study the laser-induced plasma in LiNbO3 and Bi12Ge1O20, revealing phenomena not seen in such detail with standard instruments. These include extreme line broadening up to a few nanometers accompanied by self-absorption near the target surface, as well as different ablation and expansion dynamics for the different species ejected. Overall, the high precision and wealth of quantitative information accessible with this technique open up new possibilities for the study of fundamental plasma expansion processes during pulsed laser ablation. © 2005 Elsevier B.V. All rights reserved.
机译:我们报告了一种技术,该技术能够在测量激光诱导的扩展等离子体的时间和光谱发射特性时实现高空间分辨率。等离子体直接成像到与时控增强型相机相连的成像光谱仪的狭缝上,且等离子体的扩张方向平行于狭缝的延伸。以这种方式,单个混合检测系统用于获取激光诱导等离子体的空间,光谱和时间特性。与在距离目标不同距离处进行顺序测量通常获得的分辨率相比,该技术的并行采集方法可确保在扩展方向,重现性和数据采集速度方面具有更好的空间分辨率。我们已经将该技术应用于研究LiNbO3和Bi12Ge1O20中的激光诱导等离子体,揭示了用标准仪器无法详细看到的现象。这些包括极端的线展宽到几纳米,并伴随着目标表面附近的自吸收,以及针对不同喷射物种的不同消融和膨胀动力学。总体而言,使用该技术可获取的高精度和大量定量信息为研究脉冲激光烧蚀过程中的基本等离子体膨胀过程提供了新的可能性。 ©2005 Elsevier B.V.保留所有权利。

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