Advanced in situ geochronological and trace element microanalysis by laser ablation techniques

Q2 Earth and Planetary Sciences Geological Survey of Denmark and Greenland Bulletin Pub Date : 2006-11-29 DOI:10.34194/GEUSB.V10.4884
D. Frei, J. Hollis, A. Gerdes, D. Harlov, Christine Karlsson, P. Vásquez, Ferhard Franz, L. Johansson, C. Knudsen
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引用次数: 21

Abstract

Laser ablation inductively coupled plasma mass spectrometry (LA-ICP-MS) was developed in 1985 and the first commercial laser ablation systems were introduced in the mid 1990s. Since then, LA-ICP-MS has become an important analytical tool in the earth sciences. Initially, the main interest for geologists was in its ability to quantitatively determine the contents of a wide range of elements in many minerals at very low concentrations (a few ppm and below) with relatively high spatial resolution (spot diameters of typically 30–100 μm). The potential of LA-ICP-MS for rapid in situ U–Th–Pb geochronology was already realised in the early to mid 1990s. However, the full potential of LA-ICP-MS as the low-cost alternative to ion-microprobe techniques for highly precise and accurate in situ U–Th–Pb age dating was not realised until the relatively recent advances in laser technologies and the introduction of magnetic sectorfield ICP-MS (SF-ICPMS) instruments. In March 2005, the Geological Survey of Denmark and Greenland (GEUS) commissioned a new laser ablation magnetic sectorfield inductively coupled plasma mass spectrometry (LA-SF-ICP-MS) facility employing a ThermoFinnigan Element2 high resolution magnetic sectorfield ICP-MS and a Merchantek New Wave 213 nm UV laser ablation system. The new GEUS LA-SF-ICP-MS facility is widely used on Survey research projects in Denmark and Greenland, as well as in collaborative research and contract projects conducted with partners from academia and industry worldwide. Here, we present examples from some of the these ongoing studies that highlight the application of the new facility for advanced geochronological and trace element in situ microanalysis of geomaterials. The application of LASF-ICP-MS based in situ zircon geochronology to regional studies addressing the Archaean geology of southern West Greenland is presented by Hollis et al. (2006, this volume).
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采用激光烧蚀技术进行原位年代学和微量元素分析
激光烧蚀电感耦合等离子体质谱法(LA-ICP-MS)于1985年发展起来,第一个商用激光烧蚀系统在20世纪90年代中期推出。从那时起,LA-ICP-MS已成为地球科学中重要的分析工具。最初,地质学家的主要兴趣在于它能够以相对较高的空间分辨率(斑点直径通常为30-100 μm)在非常低的浓度(几ppm及以下)下定量确定许多矿物中各种元素的含量。LA-ICP-MS在快速原位U-Th-Pb地质年代学方面的潜力早在20世纪90年代初至中期就已实现。然而,LA-ICP-MS作为离子微探针技术的低成本替代品,用于高精度和准确的原位U-Th-Pb年龄测定的全部潜力直到激光技术的相对最新进展和磁场ICP-MS (SF-ICPMS)仪器的引入才得以实现。2005年3月,丹麦和格陵兰地质调查局(GEUS)委托了一个新的激光烧蚀磁场电感耦合等离子体质谱(LA-SF-ICP-MS)设备,该设备采用ThermoFinnigan Element2高分辨率磁场ICP-MS和mertek new Wave 213 nm紫外激光烧蚀系统。新的GEUS LA-SF-ICP-MS设备广泛用于丹麦和格陵兰岛的调查研究项目,以及与全球学术界和工业界合作伙伴进行的合作研究和合同项目。在这里,我们从这些正在进行的研究中举出一些例子,这些研究突出了新设备在地质材料的先进地质年代学和微量元素原位微分析中的应用。Hollis等人(2006年,本卷)介绍了基于原位锆石年代学的LASF-ICP-MS在西格陵兰岛南部太古宙地质区域研究中的应用。
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来源期刊
CiteScore
2.30
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: GEUS Bulletin publishes geoscience research papers, monographs and map descriptions with a focus on Denmark, Greenland and the wider North Atlantic and Arctic region. We welcome submissions that fit this remit. Specifically, we publish: 1.Short articles intended as rapid communications that are of immediate interest to the international geoscience community (these include new research, datasets, methods or reviews) 2.Regular-length articles that document new research or a review of a topic of interest 3.Monographs (single volume works, by arrangement with the editorial office) 4.Maps and descriptive texts (produced by GEUS for Greenland and Denmark, by arrangement with the editorial office) GEUS Bulletin serves a broad geoscientific readership from research, industry, government agencies, NGOs and special interest groups.
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