用于水溶液中金属元素分析的固体基底辅助增强型激光诱导击穿光谱仪。

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-10-10 DOI:10.1039/d4ay01551g
Linna Song, Jianwen Han, Mingda Sui, Zihao Wei, Yunpeng Qin, Yuan Lu, Jiaojian Song, Wangquan Ye, Jinjia Guo
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引用次数: 0

摘要

由于稠密的水介质会导致等离子体淬灭,激光诱导击穿光谱(LIBS)在直接探测液体中的金属元素时面临着连续本底辐射强、特征光谱线弱且变宽等挑战。在这项工作中,我们介绍了一种改进水下 LIBS 信号的简单方法,即固体基底辅助法,该方法无需样品预处理,操作简单,因此具有原位海洋应用的潜力。在该方法中,采用了四种浸没式固体基底(Zn、Cu、Ni 和 Si),研究了水下 LIBS 的击穿特性以及使用 CaCl2 溶液增强光谱的机制。结果表明,即使在激光能量相对较低(10 mJ)的短激光脉冲下,这些基底对 Ca 的检测灵敏度也有显著提高。其中,半导体硅衬底的增强效果最好,393.4 nm 和 396.8 nm 处的钙离子线的增强因子分别超过 75,422.7 nm 处的钙原子线的增强因子为 29。这主要是因为基底的存在降低了液体样品的击穿阈值,从而获得更高的等离子体激发温度和电子密度,进而导致更高的信号强度。此外,海水中多种元素的等离子体发射也有明显增强。这些发现有助于开发低功耗、同时确保高探测灵敏度的紧凑型水下原位 LIBS 传感器。
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Solid substrate assisted enhanced laser induced breakdown spectroscopy for metal element analysis in aqueous solution.

Due to plasma quenching caused by the dense water medium, laser-induced breakdown spectroscopy (LIBS) faces challenges such as strong continuous background radiation and weak and broadened characteristic spectral lines when directly detecting metal elements in liquids. In this work, we introduced a simple approach to improve underwater LIBS signals with a solid substrate-assisted method, which requires no sample pre-treatment and simple operation and thus has potential for in situ marine applications. In this method, four submerged solid substrates (Zn, Cu, Ni, and Si) were employed to investigate the breakdown characteristics of underwater LIBS and the mechanism of spectral enhancement by using a CaCl2 solution. The results demonstrated a significant improvement in the detection sensitivity of Ca with these substrates even at a short laser pulse with a relatively low laser energy (10 mJ). Among them, the semiconductor Si substrate exhibited the best enhancement effect, with an enhancement factor of over 75 for the Ca ionic lines at 393.4 nm and 396.8 nm and an enhancement factor of 29 for the Ca atomic line at 422.7 nm, respectively. This is mainly because the presence of substrate decreases the breakdown threshold of the liquid sample, and a higher plasma excitation temperature and electron density are obtained, which, in turn, leads to higher signal intensity. Furthermore, significant plasma emission enhancements for a wide range of elements are also achieved from seawater. These findings can contribute to the development of compact underwater in situ LIBS sensors with low power consumption, while ensuring high detection sensitivity.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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