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首页> 外文期刊>Journal of Analytical Atomic Spectrometry >Long-term repeatability and interlaboratory reproducibility of high-precision ID-TIMS U-Pb geochronology
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Long-term repeatability and interlaboratory reproducibility of high-precision ID-TIMS U-Pb geochronology

机译:高精度ID-TIMS U-PB地理学的长期可重复性和互上可重复性

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摘要

Age determination of minerals using the U-Pb technique is widely used to quantify time in Earth's history. A number of geochronology laboratories produce the highest precision U-Pb dates employing the EARTHTIME ~(202)pb-~(205)pb-~(233)U-~(235)U tracer solution for isotope dilution, and the EARTHTIME ET100 and ET2000 solutions for system calibration and laboratory intercalibration. Here, we report ET100 and ET2000 solution data from the geochronology laboratory of University of Geneva obtained between 2008 and 2021 and compare the most recent data with results from the geochronology laboratories of Princeton University and ETH Zuerich. This compilation demonstrates that (ⅰ) the choice of the thermal ionization mass spectrometer model has no influence on precision and accuracy of the data; (ⅱ) the often observed excess scatter of apparent ET100 solution ~(206)Pb/~(238)U dates can be mitigated by more careful tracer-sample equilibration; and (ⅲ) natural zircon reference materials are not suitable for evaluating intra-laboratory repeatability and inter-laboratory reproducibility, since they combine several phenomena of natural system complexities (especially domains of different age within the same zircon grain, and residual loss of radiogenic lead in domains of high decay damage after chemical abrasion pre-treatment). We provide our best estimates of apparent dates for the ET100 solution (~(206)Pb/~(238)U date, 100.173 ± 0.003 Ma), for ET2000 solution (~(207)Pb/~(206)Pb date, 1999.935 ± 0.063 Ma), as well as for natural reference zircon Temora-2 (~(206)Pb/~(238)U date, 417.353 ± 0.052 Ma). These data will allow U-Pb laboratories to evaluate their analytical performance and to independently calibrate non-EARTHTIME tracer solutions in use.
机译:使用U-Pb技术的年龄测定矿物质的矿物质被广泛用于量化地球历史中的时间。许多地位实验室产生了采用地图〜(202)PB-(205)PB-〜(233)U-〜(235)U-〜(235)U Tracer溶解的最高精度U-Pb日期,以及地球ET100和地图ET2000系统校准和实验室闭层的解决方案。在这里,我们从2008年至2021年之间获得的日内瓦大学地理学实验室报告ET100和ET2000解决方案数据,并比较普林斯顿大学的地理学实验室的结果,并将最新数据与普林森大学的地理学实验室进行比较。该编译证明(Ⅰ)热电电离质谱仪模型的选择对数据的精度和准确性没有影响; (Ⅱ)经常观察到的表观ET100溶液的过量散射〜(206)PB /〜(238)U日期可以通过更加仔细的示踪样品平衡来减轻; (Ⅲ)天然锆石参考资料不适合评估实验室内的重复性和实验室间可重复性,因为它们结合了自然系统复杂性的几种现象(特别是在同一锆石颗粒内不同年龄的结构域,以及辐射铅的残余丧失在化学磨损预处理后高衰变损伤的结构域中)。我们为ET100解决方案的明显日期提供了最佳估计(〜(206)PB /〜(238)U日期,100.173±0.003 mA),适用于ET2000解决方案(〜(207)PB /〜(206)PB日期,1999.935 ±0.063 mA),以及自然参考锆石Temora-2(〜(206)PB /〜(238)U日期,417.353±0.052 mA)。这些数据将允许U-PB实验室评估其分析性能并独立校准使用中的非地际示踪解决方案。

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  • 来源
    《Journal of Analytical Atomic Spectrometry》 |2021年第7期|1466-1477|共12页
  • 作者单位

    Department of Earth Sciences University of Geneva Geneva Switzerland;

    Department of Earth Sciences University of Geneva Geneva Switzerland;

    Department of Earth Sciences University of Geneva Geneva Switzerland;

    Department of Geosciences Princeton University Princeton USA;

    Institute of Geochemistry and Petrology Department of Earth Sciences ETH Zurich Zurich Switzerland;

    Department of Earth and Atmospheric Sciences Universite de Quebec a Montreal Montreal Canada;

    Earth Sciences Universita degli Studi di Milano Milano Italy;

    Institute of Geological Sciences University of Bern Bern Switzerland;

    Department of Geosciences Princeton University Princeton USA;

    Institute of Geochemistry and Petrology Department of Earth Sciences ETH Zurich Zurich Switzerland;

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