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In situ determination of trace elements in melt inclusions using laser ablation inductively coupled plasma sector field mass spectrometry

机译:使用激光烧蚀电感耦合等离子体扇区质谱法在原位测定熔体夹杂物中的微量元素

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Rationale In situ trace element analysis of melt inclusions by laser ablation inductively coupled plasma mass spectrometry (LA-ICP-MS) provides important geochemistry information. However, the precision and accuracy of this technique are affected by many factors, such as matrix effect, laser conditions, and calibration method. In addition, many previous LA-ICP-MS studies ablated entire melt inclusions along with their host minerals and obtained trace element composition by deconvoluting the mixed ablation signal, which may induce much uncertainty. Methods A 193 nm ArF laser ablation system combined with inductively coupled plasma sector field mass spectrometry (ICP-SF-MS) was used to investigate matrix effect, laser conditions, choice of external calibration standards, and data reduction strategy for in situ analysis of 36 major and trace elements in six common silicate reference glasses. The validity of the protocol presented here was demonstrated by measuring trace elements in olivine-hosted melt inclusions. Instead of ablating entire melt inclusions along with their host minerals, melt inclusions were polished to the surface to avoid laser ablating the mineral host. Results The calibration lines calculated from the calibration standards should cross the coordinate origin, especially for low-concentration elements (10 ppm). As the laser crater size increased from 17 to 33 mu m, the precision was improved from 20% to 8% (2RSD), and accuracy was improved from +/- 20% to better than +/- 10%. Most measured trace elements in Dali melt inclusions are consistent with those in their host rocks. For mobile elements (Ba, Sr, Pb), melt inclusions display much smaller variations than their host rocks. Conclusions A simple but accurate approach for in situ analysis of trace elements in melt inclusions by LA-ICP-SF-MS has been established, which should greatly facilitate the wider application of in situ trace element geochemistry to melt inclusion studies.
机译:通过激光烧蚀电感耦合等离子体质谱(La-ICP-MS)的熔融夹杂物的原位轨迹分析提供重要的地球化学信息。然而,该技术的精度和准确性受许多因素的影响,例如矩阵效应,激光条件和校准方法。此外,许多以前的La-ICP-MS研究将整个熔体夹杂物与其宿主矿物一起研究,并通过解构混合消融信号来获得微量元素组合物,这可能引起更大的不确定性。方法采用193NM ARF激光消融系统与电感耦合等离子体扇区质谱(ICP-SF-MS)结合研究矩阵效应,激光条件,外部校准标准的选择,以及用于36的原位分析的数据降低策略六个常见的硅酸盐参考眼镜中的主要和微量元素。通过测量橄榄石托管的熔体夹杂物中的微量元素来证明此处提供的方案的有效性。而不是将整个熔体夹杂物与其宿主矿物一起烧蚀,而是熔化夹杂物在表面上抛光以避免激光烧蚀矿物宿主。结果从校准标准计算的校准线应通过坐标原点,特别是对于低浓度元素(&lt 19ppm)。由于激光火山口尺寸从17〜33μm增加,因此从20%提高了精度。大理熔体夹杂物中的大多数测量的微量元素与其主体岩石中的那些符合。对于移动元件(BA,SR,PB),熔体夹杂物显示比其主体岩石更小的变化。结论已经建立了LA-ICP-SF-MS的熔体夹杂物中微量元素的简单但准确的方法,这应该极大地促进原位痕量地球化学的应用融化研究。

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    Chinese Acad Sci Guangzhou Inst Geochem State Key Lab Isotope Geochem Guangzhou Guangdong Peoples R China;

    Chinese Acad Sci Guangzhou Inst Geochem State Key Lab Isotope Geochem Guangzhou Guangdong Peoples R China;

    Chinese Acad Sci Guangzhou Inst Geochem State Key Lab Isotope Geochem Guangzhou Guangdong Peoples R China;

    Chinese Acad Sci Guangzhou Inst Geochem State Key Lab Isotope Geochem Guangzhou Guangdong Peoples R China;

    Chinese Acad Sci Guangzhou Inst Geochem State Key Lab Isotope Geochem Guangzhou Guangdong Peoples R China;

    Chinese Acad Sci Guangzhou Inst Geochem CAS Key Lab Mineral &

    Metallogeny Guangzhou Guangdong Peoples R China;

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  • 中图分类 分析化学;
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