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首页> 外文期刊>Chimia >High Spatial Resolution Quantitative Imaging by Cross-calibration Using Laser Ablation Inductively Coupled Plasma Mass Spectrometry and Synchrotron Micro-X-ray Fluorescence Technique
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High Spatial Resolution Quantitative Imaging by Cross-calibration Using Laser Ablation Inductively Coupled Plasma Mass Spectrometry and Synchrotron Micro-X-ray Fluorescence Technique

机译:使用激光消融电感耦合等离子体质谱和同步加速微X射线荧光技术进行交叉校正的高空间分辨率定量成像

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摘要

High spatial resolution, quantitative chemical imaging is of importance to various scientific communities, however high spatial resolution and robust quantification are not trivial to attain at the same time. In order to achieve microscopic chemical imaging with enhanced quantification capabilities, the current study links the independent and complementary advantages of two micro-analytical techniques - Synchrotron Radiation-based micro X-ray Fluorescence (SR-microXRF) and Laser Ablation Inductively Coupled Plasma Mass Spectrometry (LA-ICPMS). A cross-calibration approach is established between these two techniques and validated by one experimental demonstration. In the presented test case, the diffusion pattern of trace level Cs migrating into a heterogeneous geological medium is imaged quantitatively with high spatial resolution. The one-dimensional line scans and the two-dimensional chemical images reveal two distinct types of geochemical domains: calcium carbonate rich domains and clay rich domains. During the diffusion, Cs shows a much higher interfacial reactivity within the clay rich domain, and turns out to be nearly non-reactive in the calcium carbonate domains. Such information obtained on the micrometer scale improves our chemical knowledge concerning reactive solute transport mechanism in heterogeneous media. Related to the chosen demonstration study, the outcome of the quantitative, microscopic chemical imaging contributes to a refined safety assessment of potential host rock materials for deep-geological nuclear waste storage repositories.
机译:高空间分辨率,定量化学成像对各个科学界都很重要,但是高空间分辨率和可靠的量化并不是同时实现的。为了实现具有增强的定量功能的显微化学成像,当前的研究结合了两种微分析技术的独立和互补的优势-基于同步辐射的微X射线荧光(SR-microXRF)和激光烧蚀电感耦合等离子体质谱法(LA-ICPMS)。在这两种技术之间建立了交叉校准方法,并通过一个实验演示进行了验证。在提出的测试案例中,以高空间分辨率定量成像了迁移到异质地质介质中的痕量Cs的扩散模式。一维线扫描和二维化学图像揭示了两种不同类型的地球化学域:富含碳酸钙的域和富含粘土的域。在扩散过程中,Cs在富含粘土的区域内显示出更高的界面反应性,而在碳酸钙区域内几乎没有反应性。在千分尺尺度上获得的此类信息改善了我们有关异质介质中反应性溶质传输机理的化学知识。与所选的示范研究有关,定量的微观化学成像的结果有助于对用于深地质核废料储存库的潜在宿主岩石材料进行精细的安全评估。

著录项

  • 来源
    《Chimia》 |2012年第4期|p.223-228|共6页
  • 作者单位

    microXAS Beamline Project Swiss Light Source Paul Scherrer Institut CH-5232 Villigen PSI,Trace Element and Micro Analysis Group ETH Zuerich Wolfgang-Pauli-Str.10 CH-8093 Zuerich;

    microXAS Beamline Project Swiss Light Source Paul Scherrer Institut CH-5232 Villigen PSI;

    Laboratory for Waste Management Paul Scherrer Institut CH-5232 Villigen PSI;

    Soil Chemistry ETH Zuerich Universitaetstrasse 16 CH-8092 Zuerich;

    microXAS Beamline Project Swiss Light Source Paul Scherrer Institut CH-5232 Villigen PSI;

    Trace Element and Micro Analysis Group ETH Zuerich Wolfgang-Pauli-Str.10 CH-8093 Zuerich;

    Trace Element and Micro Analysis Group ETH Zuerich Wolfgang-Pauli-Str.10 CH-8093 Zuerich;

  • 收录信息 美国《科学引文索引》(SCI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    high spatial resolution; LA-ICPMS; MicroXRF; opalinus clay; quantitative;

    机译:高空间分辨率;LA-ICPMS;MicroXRF;opalinus粘土定量的;

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