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环境气体对与同位素分析相关的 Li 跃迁自反转的影响。

Influence of ambient gas on self-reversal in Li transitions relevant to isotopic analysis.

出版信息

Opt Express. 2023 Jan 30;31(3):3549-3564. doi: 10.1364/OE.477990.

Abstract

Laser induced breakdown spectroscopy is a promising, rapid analysis method for the detection and quantification of Li and its isotopes needed in geochemical, nuclear, and energy storage applications. However, spectral broadening in laser produced plasmas, presence of fine and hyperfine structures, and self-reversal effects make Li isotopic analysis via laser induced breakdown spectroscopy challenging. The present study explores the influence of Ar, N, and He ambient gases over the pressure range of 0.05 - 100 Torr on line broadening and self-reversal of the Li I transition with the greatest isotopic shift in the VIS spectral region (i.e., ≈670.8 nm, ≈15.8 pm isotopic shift). We perform spatially and temporally resolved optical emission spectroscopy of plasmas produced via laser ablation of LiAlO substrates. Our results show that the self-reversal and linewidth is reduced at lower pressures for all gases, and using optimized plasma conditions with chemometric methods, the Li/Li isotopic ratios can be predicted.

摘要

激光诱导击穿光谱是一种很有前途的快速分析方法,可用于检测和定量地质化学、核和储能应用中所需的锂及其同位素。然而,激光产生的等离子体中的光谱展宽、精细和超精细结构以及自反转效应使得通过激光诱导击穿光谱进行锂同位素分析具有挑战性。本研究探讨了在 0.05-100 托的压力范围内,氩气、氮气和氦气环境气体对 VIS 光谱区域(即约 670.8nm,约 15.8pm 同位素位移)中最大同位素位移的 Li I 跃迁的线宽和自反转的影响。我们通过激光烧蚀 LiAlO 衬底产生的等离子体进行了时空分辨的发射光谱测量。我们的结果表明,对于所有气体,在较低压力下自反转和谱线宽度减小,并且使用优化的等离子体条件和化学计量学方法,可以预测 Li/Li 同位素比。

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