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首页> 外文期刊>Anais da Academia Brasileira de Ciencias >High spatial resolution analysis of Pb and U isotopes for geochronology by laser ablation multi-collector inductively coupled plasma mass spectrometry (LA-MC-ICP-MS)
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High spatial resolution analysis of Pb and U isotopes for geochronology by laser ablation multi-collector inductively coupled plasma mass spectrometry (LA-MC-ICP-MS)

机译:激光烧蚀多收集器电感耦合等离子体质谱法(LA-MC-ICP-MS)用于地质年代学的Pb和U同位素的高空间分辨率分析

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Age determinations using the 235U and 238U radioactive decay series to the daughter isotopes 207Pb and 206Pb, respectively, using the mineral zircon (ZrSiO4), are widely used to decipher geological processes. A new method developed in the last couple of years, the laser ablation multi-collector inductively coupled plasma mass spectrometry (LA-MC-ICP-MS), overcomes previous laborious sample preparation, and yields isotopic ratios and age data with a high spatial resolution of ten of microns. The present study describes the analytical set-up and data reduction process as presently applied at the Laboratory for Geochronology of the University of Brasília. It explores the precision and accuracy of the method by cross-analysing three international zircon standards. We arrive at a precision of 1.9 to 3.7% (2σ SD) and an accuracy of 0.6 to 3.8% (2σ SD) for and U isotopic ratios of the standards. We also apply the method to two natural zircon samples, which have previously been dated by other analytical methods. A comparison of the results show a good conformity of the age data,being whitin the error limits. The data demonstrate the great analytical potential of the method for rapid, precise and accurate U-Pb isotopic analyses on the micron scale.
机译:分别使用矿物锆石(ZrSiO4)使用235U和238U放射性衰变序列分别确定子同位素207Pb和206Pb的年龄,可用来解释地质过程。过去几年开发的一种新方法,激光烧蚀多收集器电感耦合等离子体质谱法(LA-MC-ICP-MS),克服了以前费力的样品制备过程,并获得了具有高空间分辨率的同位素比值和年龄数据十微米。本研究描述了目前在巴西利亚大学地球年代实验室应用的分析设置和数据缩减过程。通过对三个国际锆石标准进行交叉分析,探索了该方法的准确性和准确性。对于标准品和U同位素比率,我们的精度为1.9%至3.7%(2σSD),精度为0.6%至3.8%(2σSD)。我们还将这种方法应用于两个天然锆石样品,这些样品先前已通过其他分析方法确定了日期。结果的比较表明年龄数据符合误差限制。数据证明了该方法在微米规模上进行快速,精确和准确的U-Pb同位素分析的巨大分析潜力。

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