Precise Measurement of Magnesium Isotopes in Fe-Mg Minerals Using a Multi-collector SHRIMP Ion Microprobe

IF 2.7 2区 地球科学 Q2 GEOCHEMISTRY & GEOPHYSICS
Fernando Bea, Pilar Montero, Delia Ortega, José F. Molina, Aitor Cambeses, Leticia Barcos, Shui-Jiong Wang, Shan Ke
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Abstract

The distribution of Mg isotopes in minerals is becoming increasingly relevant in Earth science. Usually, they are determined by dissolving mineral concentrates and, after purifying Mg with ion exchange resins, analysing the resulting solutions by TIMS or, most often, MC-ICP-MS. When applied to individual minerals, these methods are slow and prone to contamination from impurities in the concentrates, inconveniences that may be avoided using spot analysis techniques such as LA-MC-ICP-MS or SIMS, albeit at the price of a large instrumental mass fractionation (IMF) and isobaric interferences, most prominent in the former. Here, we studied the potential of the multi-collector SHRIMP II ion microprobe for measuring Mg isotopes in Fe-Mg silicates and oxides. We found that, when corrected for the divergence of the Mg ion paths within the sample chamber caused by the Earth's magnetic field, the SHRIMP's IMF overwhelmingly depends on the mineral species, and the effects of variable chemical composition are negligible. We propose that the IMF is caused by the force constant difference, ∆F, between "hard" and "soft" bonds linking the ions of the studied element to the mineral lattice. Given that ∆F is a constant for each mineral species, we calculated IMF-correction factors for the most common Mg-bearing minerals. The thus-calculated correction factors permit the analysis in the same session, and with reasonable accuracy (within ~ 0.3‰ of the δ26Mg determined by SN-MC-ICP-MS analyses of concentrates), of samples from different mineral species, facilitating the application of Mg isotopes to terrestrial studies.

Abstract Image

Abstract Image

利用多收集器 SHRIMP 离子微探针精确测量铁镁矿物中的镁同位素
镁同位素在矿物中的分布与地球科学的关系日益密切。通常,测定方法是溶解矿物精矿,用离子交换树脂纯化镁后,用 TIMS 或最常见的 MC-ICP-MS 分析所得溶液。在应用于单个矿物时,这些方法速度较慢,而且容易受到精矿中杂质的污染,而使用 LA-MC-ICP-MS 或 SIMS 等定点分析技术则可以避免这些不便,尽管代价是仪器质量分馏(IMF)较大和等压干扰(在前者中最为突出)。在这里,我们研究了多收集器 SHRIMP II 离子微探针测量铁镁硅酸盐和氧化物中镁同位素的潜力。我们发现,在校正了地球磁场造成的样品室内镁离子路径发散后,SHRIMP 的 IMF 主要取决于矿物种类,而化学成分变化的影响可以忽略不计。我们提出,IMF 是由连接所研究元素离子与矿物晶格的 "硬 "键和 "软 "键之间的力常数差 ∆F 引起的。鉴于 ∆F 是每种矿物的常数,我们计算了最常见含镁矿物的 IMF 校正因子。这样计算出的校正因子可以在同一次会议上,以合理的准确度(精矿 SN-MC-ICP-MS 分析测定的 δ26Mg 在约 0.3‰以内),对不同矿物种类的样品进行分析,从而促进了镁同位素在陆地研究中的应用。
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来源期刊
Geostandards and Geoanalytical Research
Geostandards and Geoanalytical Research 地学-地球科学综合
CiteScore
7.10
自引率
18.40%
发文量
54
审稿时长
>12 weeks
期刊介绍: Geostandards & Geoanalytical Research is an international journal dedicated to advancing the science of reference materials, analytical techniques and data quality relevant to the chemical analysis of geological and environmental samples. Papers are accepted for publication following peer review.
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