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The suppression of fluorescence peaks in energy-dispersive X-ray diffraction

机译:在能量色散X射线衍射中抑制荧光峰

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摘要

A novel method to separate diffraction and fluorescence peaks in energy-uddispersive X-ray diffraction (EDXRD) is described. By tuning the excitation energy of an X-ray tube source to just below an elemental absorption edge, the corresponding fluorescence peaks of that element are completely suppressed in the resulting spectrum. Since photons are present in the source spectrum up to the excitation energy, any diffraction peaks that lie at similar energies to the suppressed fluorescence peaks are uncovered. This technique is an alternative to the more usual method in EDXRD of altering the scattering angle in order to shift the energies of the diffraction peaks. However, in the back-reflection EDXRD technique [Hansford (2011). , 514–525] changing the scattering angle would lose the unique property of insensitivity to sample morphology and is therefore an unattractive option. The use of fluorescence suppression to reveal diffraction peaks is demonstrated experimentally by suppressing the Ca fluorescence peaks in the back-reflection EDXRD spectra of several limestones and dolomites. Three substantial benefits are derived: uncovering of diffraction peak(s) that are otherwise obscured by fluorescence; suppression of the Ca escape peaks; and an increase in the signal-to-background ratio. The improvement in the quality of the EDXRD spectrum allows the identification of a secondary mineral in the samples, where present. The results for a pressed-powder pellet of the geological standard JDo-1 (dolomite) show the presence of crystallite preferred orientation in this prepared sample. Preferred orientation is absent in several unprepared limestone and dolomite rock specimens, illustrating an advantage of the observation of rocks in their natural state enabled by back-reflection EDXRD.
机译:描述了一种在能量/超分散X射线衍射(EDXRD)中分离衍射峰和荧光峰的新方法。通过将X射线管源的激发能调节到恰好在元素吸收边缘以下,该元素的相应荧光峰在所得光谱中被完全抑制。由于光子中直至激发能量都存在光子,因此未发现任何与抑制的荧光峰具有相似能量的衍射峰。此技术是EDXRD中更常用的更改散射角以移动衍射峰能量的方法的替代方法。但是,在背反射EDXRD技术中[Hansford(2011)。 (514-525),改变散射角将失去对样品形态不敏感的独特特性,因此是一种没有吸引力的选择。通过抑制几种石灰石和白云岩的背向反射EDXRD光谱中的Ca荧光峰,实验证明了使用荧光抑制来揭示衍射峰。产生了三个实质性的好处:揭示了被荧光遮盖的衍射峰;抑制钙逸出峰;并增加了信噪比。 EDXRD光谱质量的提高允许鉴定样品中存在的次要矿物。地质标准品JDo-1(白云石)的压粉颗粒的结果表明,在此制备的样品中存在微晶优先取向。在几个未准备的石灰岩和白云岩岩石标本中没有首选的取向,这说明了通过自然反射观察EDXRD可以观察岩石的自然状态。

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