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大气环境对共线双脉冲激光诱导击穿光谱的影响。

Effect of atmosphere on collinear double-pulse laser-induced breakdown spectroscopy.

机构信息

Idaho National Laboratory (INL), Idaho Falls, ID 83415, USA.

出版信息

Anal Bioanal Chem. 2011 Jul;400(10):3217-27. doi: 10.1007/s00216-011-5034-z. Epub 2011 May 8.

DOI:10.1007/s00216-011-5034-z
PMID:21553217
Abstract

Double-pulse laser-induced breakdown spectroscopy (DP-LIBS) has been shown to enhance LIBS spectra. Several researchers have reported significant increases in signal-to-noise and/or spectral intensity compared to single-pulse (SP) LIBS. In addition to DP-LIBS, atmospheric conditions can also increase sensitivity. Thus, in this study, a collinear DP-LIBS scheme was used along with manipulation of the atmospheric conditions. The DP-LIBS scheme consisted of an initial 45-mJ pulse at 1,064-nm fired into a sample contained in a controlled atmospheric/vacuum chamber. A second analytical 45-mJ pulse at 1,064-nm was then fired 0 to 200 μs after and along the same path of the first pulse. Ar, He, and air at pressures ranging from atmospheric pressure to 1 Torr are introduced during DP-LIBS and SP-LIBS experiments. For a brass sample, significant increases in the spectral intensities of Cu and Zn lines were observed in DP-LIBS under Ar compared to DP-LIBS in air. It was also found that Cu and Zn lines acquired with SP-LIBS in Ar are nearly as intense as DP-LIBS in air. While collinear DP-LIBS is effective for increasing the sensitivity for some reduced atmospheres (i.e., Ar and air at 630 to 100 Torr and He at 300 Torr), the enhanced spectral intensity ultimately dropped off as the pressure was reduced below 10 Torr for all atmospheric compositions in the experimental arrangement used in this study. At all pressures of air and Ar, the plasma temperature remained rather constant with increased inter-pulse delays; however, the plasma temperature was more variable for different He gas pressures and inter-pulse delays.

摘要

双脉冲激光诱导击穿光谱(DP-LIBS)已被证明可以增强 LIBS 光谱。与单脉冲(SP)LIBS 相比,一些研究人员已经报道了信号噪声和/或光谱强度的显著增加。除 DP-LIBS 外,大气条件也可以提高灵敏度。因此,在本研究中,使用共线 DP-LIBS 方案并操纵大气条件。DP-LIBS 方案由初始 45mJ 的 1064nm 脉冲组成,该脉冲进入置于受控大气/真空室中的样品。然后,第二个分析性的 45mJ 脉冲在第一脉冲之后的 0 至 200μs 时沿着与第一脉冲相同的路径发射。在 DP-LIBS 和 SP-LIBS 实验中,引入了从大气压到 1 托的 Ar、He 和空气。对于黄铜样品,与 DP-LIBS 在空气中相比,在 DP-LIBS 下,Ar 中的 Cu 和 Zn 线的光谱强度显著增加。还发现,在 Ar 中进行 SP-LIBS 获得的 Cu 和 Zn 线的强度几乎与 DP-LIBS 中的空气一样强。虽然共线 DP-LIBS 对一些还原气氛(即 630 至 100 托的 Ar 和空气以及 300 托的 He)的灵敏度提高很有效,但在本研究中使用的实验装置中,当压力降低到 10 托以下时,增强的光谱强度最终下降。在空气和 Ar 的所有压力下,等离子体温度随脉冲间隔的增加而保持相当稳定;然而,对于不同的 He 气压和脉冲间隔,等离子体温度变化较大。

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