Trace element determination by femtosecond LA-ICP-MS in 10 mg extraterrestrial geological samples prepared as lithium borate glasses†

IF 3.1 2区 化学 Q2 CHEMISTRY, ANALYTICAL
Yan-Hong Liu, Ding-Shuai Xue, Wen-Jun Li, Zhong-Qiang Wang, Yan Liang, Shun Guo and Bo Wan
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Abstract

Bulk chemical composition analysis is a primary and pivotal analytical task for extraterrestrial geological samples (e.g., lunar soil, asteroids, or meteoroids). However, the analysis of mg-level consumption of extraterrestrial geological samples poses a significant challenge to existing analytical techniques. In this study, a new method was developed for trace element determination in bulk extraterrestrial geological samples prepared as lithium borate glasses, following customized procedures for X-ray fluorescence (XRF) analysis with a 10 mg sample by femtosecond LA-ICP-MS. All thirty-two trace elements in the borate glass samples were evenly distributed with homogeneity indices (H) < Hcrit. For the borate glass samples, Si was more suitable as an internal standard for Co, Ni, Cu, and Zn, whereas Al was better for the others. The femtosecond laser greatly reduces the influence of matrix effects, making calibration with non-matrix-matched external standards (NIST 612 and 614) accurate. Although the mass ratio of the flux and sample was as high as 35 : 1, the analytical results of 32 trace elements in six silicate rock reference materials (covering mafic to felsic rock types) using the developed technique were consistent with the reference values within 10% for most elements, and analytical precision (RSD) was also within 10% for most elements. Finally, one lunar basalt (NWA14526) and one shergottite (NWA13190) were assayed using the proposed method, and a comparison with the results of solution nebulization (SN)-ICP-MS confirmed the reliability of the method. The proposed method, combined with XRF, achieved the rapid, simultaneous, and accurate determination of major and trace elements in the same small sample aliquot (10 mg), which is highly suitable for the analysis of extraterrestrial geological samples.

Abstract Image

用飞秒 LA-ICP-MS 测定制备成硼酸锂玻璃的 10 毫克地外地质样品中的痕量元素†。
大块化学成分分析是地外地质样品(如月球土壤、小行星或流星体)的主要和关键分析任务。然而,地外地质样品毫克级消耗量的分析对现有分析技术提出了巨大挑战。本研究开发了一种新方法,用于测定制备成硼酸锂玻璃的大量地外地质样品中的痕量元素,该方法采用定制的 X 射线荧光 (XRF) 分析程序,通过飞秒 LA-ICP-MS 对 10 毫克样品进行分析。硼酸盐玻璃样品中的 32 种微量元素分布均匀,均匀度指数 (H) < Hcrit。在硼酸盐玻璃样品中,Si 更适合作为 Co、Ni、Cu 和 Zn 的内标,而 Al 则更适合作为其他元素的内标。飞秒激光大大降低了基体效应的影响,使非基体匹配外部标准(NIST 612 和 614)的校准变得精确。虽然通量和样品的质量比高达 35 :尽管通量和样品的质量比高达 35:1,但利用所开发的技术对六种硅酸盐岩石参考材料(涵盖岩浆岩到长英岩类型)中 32 种微量元素的分析结果与参考值一致,大多数元素的分析精度(RSD)在 10%以内,大多数元素的分析精度(RSD)也在 10%以内。最后,利用所提出的方法化验了一块月球玄武岩(NWA14526)和一块闪长岩(NWA13190),并与溶液雾化(SN)-ICP-MS 的结果进行了比较,证实了该方法的可靠性。所提出的方法与 XRF 相结合,实现了在同一小份样品(10 毫克)中快速、同步、准确地测定主要元素和痕量元素,非常适合地外地质样品的分析。
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来源期刊
CiteScore
6.20
自引率
26.50%
发文量
228
审稿时长
1.7 months
期刊介绍: Innovative research on the fundamental theory and application of spectrometric techniques.
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