首页> 外文期刊>Contributions to Mineralogy and Petrology >Quantification of the ferric/ferrous iron ratio in silicates by scanning transmission X-ray microscopy at the Fe L2,3 edges
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Quantification of the ferric/ferrous iron ratio in silicates by scanning transmission X-ray microscopy at the Fe L2,3 edges

机译:通过扫描透射X射线显微镜在Fe L2,3边缘对硅酸盐中铁/亚铁比率进行定量

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摘要

Estimation of Fe3+/ΣFe ratios in materials at the submicrometre scale has been a long-standing challenge in the Earth and environmental sciences because of the usefulness of this ratio in estimating redox conditions as well as for geothermometry. To date, few quantitative methods with submicrometric resolution have been developed for this purpose, and most of them have used electron energy-loss spectroscopy carried out in the ultra-high vacuum environment of a transmission electron microscope (TEM). Scanning transmission X-ray microscopy (STXM) is a relatively new technique complementary to TEM and is increasingly being used in the Earth sciences. Here, we detail an analytical procedure to quantify the Fe3+/ΣFe ratio in silicates using Fe L2,3-edge X-ray absorption near edge structure (XANES) spectra obtained by STXM, and we discuss its advantages and limitations. Two different methods for retrieving Fe3+/ΣFe ratios from XANES spectra are calibrated using reference samples with known Fe3+ content by independent approaches. The first method uses the intensity ratio of the two major peaks at the L3-edge. This method allows mapping of Fe3+/ΣFe ratios at a spatial scale better than 50 nm by the acquisition of 5 images only. The second method employs a 2-eV-wide integration window centred on the L2 maximum for Fe3+, which is compared to the total integral intensity of the Fe L2-edge. These two approaches are applied to metapelites from the Glarus massif (Switzerland), containing micrometre-sized chlorite and illite grains and prepared as ultrathin foils by focused ion beam milling. Nanometre-scale mapping of iron redox in these samples is presented and shows evidence of compositional zonation. The existence of such zonation has crucial implications for geothermometry and illustrates the importance of being able to measure Fe3+/ΣFe ratios at the submicrometre scale in geological samples.
机译:在亚微米级范围内估算材料中Fe3 + /ΣFe的比例一直是地球和环境科学领域的一项长期挑战,因为该比例在估算氧化还原条件和地热法中很有用。迄今为止,为此目的开发了很少的具有亚微米分辨率的定量方法,并且它们中的大多数已经使用了在透射电子显微镜(TEM)的超高真空环境中进行的电子能量损失谱。扫描透射X射线显微镜(STXM)是相对于TEM的相对较新的技术,并且在地球科学中越来越多地被使用。在这里,我们详细介绍了使用STXM获得的Fe L2,3-edge X射线吸收近边缘结构(XANES)光谱定量分析硅酸盐中Fe3 + /ΣFe比的分析程序,并讨论了其优势和局限性。使用独立方法,使用具有已知Fe3 +含量的参考样品,对从XANES光谱中检索Fe3 + /ΣFe比的两种不同方法进行了校准。第一种方法使用L3边缘的两个主要峰的强度比。通过仅采集5张图像,该方法允许在优于50nm的空间尺度上映射Fe3 + /ΣFe比。第二种方法采用以Fe3 +的L2最大值为中心的2-eV宽积分窗,并将其与Fe L2边缘的总积分强度进行比较。这两种方法适用于来自Glarus断层(瑞士)的变质岩,其中含有微米级的绿泥石和伊利石晶粒,并通过聚焦离子束铣削加工成超薄箔。呈现了这些样品中铁氧化还原的纳米级图,并显示了组成分区的证据。这种分区的存在对地热测量具有至关重要的意义,并说明了能够在地质样品中以亚微米尺度测量Fe3 + /ΣFe比的重要性。

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