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首页> 外文期刊>Measurement Science & Technology >Quantitative measurement of the chemical composition of geological standards with a miniature laser ablation/ionization mass spectrometer designed for in situ application in space research
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Quantitative measurement of the chemical composition of geological standards with a miniature laser ablation/ionization mass spectrometer designed for in situ application in space research

机译:微型激光烧蚀/电离质谱仪用于地质研究中的原位应用,定量测量地质标准的化学成分

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摘要

A key interest of planetary space missions is the quantitative determination of the chemical composition of the planetary surface material. The chemical composition of surface material (minerals, rocks, soils) yields fundamental information that can be used to answer key scientific questions about the formation and evolution of the planetary body in particular and the Solar System in general. We present a miniature time-of-flight type laser ablation/ ionization mass spectrometer (LMS) and demonstrate its capability in measuring the elemental and mineralogical composition of planetary surface samples quantitatively by using a femtosecond laser for ablation/ionization. The small size and weight of the LMS make it a remarkable tool for in situ chemical composition measurements in space research, convenient for operation on a lander or rover exploring a planetary surface. In the laboratory, we measured the chemical composition of four geological standard reference samples USGS AGV-2 Andesite, USGS SCo-l Cody Shale, NIST 97b Flint Clay and USGS QLO-1 Quartz Latite with LMS. These standard samples are used to determine the sensitivity factors of the instrument. One important result is that all sensitivity factors are close to 1. Additionally, it is observed that the sensitivity factor of an element depends on its electron configuration, hence on the electron work function and the elemental group in agreement with existing theory. Furthermore, the conformity of the sensitivity factors is supported by mineralogical analyses of the USGS SCo-l and the NIST 97b samples. With the four different reference samples, the consistency of the calibration factors can be demonstrated, which constitutes the fundamental basis for a standard-less measurement-technique for in situ quantitative chemical composition measurements on planetary surface.
机译:行星空间飞行任务的主要兴趣是对行星表面材料化学成分的定量确定。表面材料(矿物,岩石,土壤)的化学成分可提供基本信息,可用于回答有关特别是行星体以及整个太阳系的形成和演化的关键科学问题。我们提出了一种微型飞行时间激光烧蚀/电离质谱仪(LMS),并展示了其通过使用飞秒激光进行烧蚀/电离来定量测量行星表面样品的元素和矿物组成的能力。 LMS的体积小,重量轻,使其成为空间研究中原位化学成分测量的杰出工具,便于在着陆器或流动站上探索行星表面时进行操作。在实验室中,我们用LMS测量了四个地质标准参考样品USGS AGV-2安山岩,USGS SCo-1科迪页岩,NIST 97b火石粘土和USGS QLO-1石英红土的化学成分。这些标准样品用于确定仪器的灵敏度因子。一个重要的结果是所有灵敏度因子都接近1。此外,可以观察到元素的灵敏度因子取决于其电子构型,因此取决于电子功函数和与现有理论一致的元素基团。此外,USGS SCo-1和NIST 97b样品的矿物学分析支持了敏感性因子的一致性。使用这四个不同的参考样品,可以证明校准因子的一致性,这构成了用于在行星表面上进行原位定量化学成分测量的无标准测量技术的基础。

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