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用于微陨石原位铁同位素分析的纳秒激光烧蚀-多接收电感耦合等离子体质谱法:在微米级玻璃质宇宙球粒中的应用

Nanosecond Laser Ablation-Multicollector Inductively Coupled Plasma-Mass Spectrometry for in Situ Fe Isotopic Analysis of Micrometeorites: Application to Micrometer-Sized Glassy Cosmic Spherules.

作者信息

González de Vega Claudia, Costas-Rodríguez Marta, Van Acker Thibaut, Goderis Steven, Vanhaecke Frank

机构信息

Ghent University, Department of Chemistry, Atomic & Mass Spectrometry-A&MS research unit, Campus Sterre, Krijgslaan 281-S12, 9000 Ghent, Belgium.

Vrije Universiteit Brussel (VUB), Analytical, Environmental and Geo-Chemistry (AMGC), Pleinlaan 2, 1050 Brussels, Belgium.

出版信息

Anal Chem. 2020 Mar 3;92(5):3572-3580. doi: 10.1021/acs.analchem.9b04029. Epub 2020 Feb 18.

DOI:10.1021/acs.analchem.9b04029
PMID:32013393
Abstract

This work evaluates the use of nanosecond laser ablation-multicollector inductively coupled plasma-mass spectrometry (ns-LA-MC-ICP-MS) for Fe isotopic analysis of glassy cosmic spherules. Several protocols for data acquisition from the transient signals were compared, with the integration method, i.e., isotope ratios obtained by dividing the corresponding signal intensities integrated over the selected signal segment, providing the best precision. The bias caused by instrumental mass discrimination was corrected for by a combination of internal correction using Ni as an internal standard (coming from a conebulized standard solution) and external correction using a matrix-matched standard. Laser spot size and repetition rate were adapted to match the signal intensities for sample and standard within ±10%. For in situ isotopic analysis, the precision of the δFe values ranged between 0.02 and 0.11‰ (1 SD, based on 4 measurement sessions, each based on ablation along 5 lines for 30 s each) and 0.03-0.17‰ (SD, based on 3 measurement sessions) for glass reference materials and micrometeorites, respectively. Despite this excellent reproducibility, the variation of the isotope ratios along a single ablation line indicated isotopic inhomogeneity exceeding 1‰ in some micrometeorites. Isotopic analysis via pneumatic nebulization MC-ICP-MS, after sample digestion and chromatographic Fe isolation, was performed to validate the results obtained by in situ isotopic analysis, and good agreement was achieved between the δ-values obtained via both approaches and with those reported in literature for MPI-DING and USGS glass reference materials. Also for the glassy cosmic spherules, overall, there was a good match between the ns-LA-MC-ICP-MS and solution MC-ICP-MS results.

摘要

本研究评估了纳秒激光烧蚀-多接收电感耦合等离子体质谱法(ns-LA-MC-ICP-MS)用于玻璃质宇宙球粒铁同位素分析的情况。比较了几种从瞬态信号获取数据的方案,其中积分法,即通过将选定信号段内积分得到的相应信号强度相除获得的同位素比值,具有最佳精度。通过使用镍作为内标(来自雾化标准溶液)进行内部校正和使用基质匹配标准进行外部校正相结合的方法,校正了仪器质量歧视引起的偏差。调整激光光斑尺寸和重复率,以使样品和标准的信号强度匹配在±10%以内。对于原位同位素分析,玻璃参考物质和微陨石的δFe值精度分别在0.02至0.11‰(1标准差,基于4次测量,每次测量基于沿5条线烧蚀30秒)和0.03 - 0.17‰(标准差,基于3次测量)之间。尽管具有如此出色的重现性,但在一些微陨石中,沿单一烧蚀线的同位素比值变化表明同位素不均匀性超过1‰。通过气动雾化MC-ICP-MS在样品消化和色谱分离铁后进行同位素分析,以验证原位同位素分析获得的结果,两种方法获得的δ值与文献报道的MPI-DING和USGS玻璃参考物质的δ值之间达成了良好的一致性。同样对于玻璃质宇宙球粒,总体而言,ns-LA-MC-ICP-MS和溶液MC-ICP-MS的结果之间有很好的匹配。

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