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结构化光束的丝状诱导击穿光谱学。

Filament-induced breakdown spectroscopy with structured beams.

作者信息

Burger M, Polynkin P, Jovanovic I

出版信息

Opt Express. 2020 Nov 23;28(24):36812-36821. doi: 10.1364/OE.412480.

Abstract

Filament-induced ablation represents an attractive scheme for long-range material identification via optical spectroscopy. However, the delivery of laser energy to the target can be severely hindered by the stochastic nature of multiple-filamentation, ionization of ambient gas, and atmospheric turbulence. In order to mitigate some of these adverse effects, we examine the utility of beam shaping for femtosecond filament-induced breakdown spectroscopy with Gaussian and structured (Laguerre-Gaussian, Airy, and Bessel-Gaussian) beams in the nonlinear regime. Interaction of filaments with copper, zinc, and brass targets was studied by recording axially-resolved broadband emission from the filament-induced plasma. The laser-solid coupling efficacy was assessed by inferring thermodynamic parameters such as excitation temperature and electron density. While under our experimental conditions the ablation rate with Gaussian- and Laguerre-Gaussian beams is found to be similar, the Airy and Bessel-Gaussian beams offer the advantage of longitudinally extended working zones. These results provide insights into potential benefits of structuring ultrafast laser beams for standoff sensing applications.

摘要

丝状诱导烧蚀是一种通过光谱学进行远程材料识别的有吸引力的方案。然而,激光能量向目标的传输会受到多丝现象的随机性、周围气体的电离以及大气湍流的严重阻碍。为了减轻其中一些不利影响,我们研究了在非线性区域中,使用高斯光束和结构化光束(拉盖尔 - 高斯光束、艾里光束和贝塞尔 - 高斯光束)进行飞秒丝状诱导击穿光谱分析时光束整形的效用。通过记录丝状诱导等离子体的轴向分辨宽带发射,研究了细丝与铜、锌和黄铜靶材的相互作用。通过推断诸如激发温度和电子密度等热力学参数来评估激光与固体的耦合效率。虽然在我们的实验条件下,发现高斯光束和拉盖尔 - 高斯光束的烧蚀率相似,但艾里光束和贝塞尔 - 高斯光束具有纵向扩展工作区的优势。这些结果为超快激光光束整形在远距离传感应用中的潜在益处提供了见解。

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