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首页> 外文期刊>Geochimica et Cosmochimica Acta: Journal of the Geochemical Society and the Meteoritical Society >A new method integrating high-precision U-Pb geochronology with zircon trace element analysis (U-Pb TIMS-TEA)
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A new method integrating high-precision U-Pb geochronology with zircon trace element analysis (U-Pb TIMS-TEA)

机译:结合高精度U-Pb年代学和锆石微量元素分析的新方法(U-Pb TIMS-TEA)

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摘要

Increased precision in isotope-dilution thermal ionization mass spectrometry (ID-TIMS) U-Pb geochronology has revealed age complexities in zircon populations that require new tools for understanding how the growth of zircon is related to geologic processes. U and Pb are routinely separated from other elements in dated minerals by ion exchange separation prior to TIMS isotope measurement. We develop a method in which trace elements in the exact same volume of zircon are redissolved and analyzed using solution nebulization inductively coupled plasma sector-field mass spectrometry with matrix-matched external liquid calibration. Using <0.5. ml solution, resulting concentrations are between <1. ppt for elements such as Ti, Nb and Ta and tens of ppb for Zr. By analyzing a series of standard solutions, zircons and procedural blanks, we show that accurate measurements are performed on Zr, Hf, Y, Sc, and the HREE while low-concentration elements can be measured accurately to <5. ppt. We performed combined U-Pb ID-TIMS geochronology with trace element analysis (here called U-Pb TIMS-TEA) on zircons from eight volcanic rocks comprising several volcanic systems and one metamorphic sample. Similar to previous in situ trace element analyses, zircon geochemistry is distinct between different samples and records petrogenetic processes such as fractional crystallization, assimilation and/or magma mixing. Unique from in situ analysis, U-Pb TIMS-TEA can trace geochemical evolution in accessory minerals with adequate age precision to resolve magmatic processes in rocks at least 200 million years old. This provides a means to identify auto-, ante- and xenocrystic zircon and lead to more robust age interpretations in ID-TIMS U-Pb geochronology. One suite of Cretaceous andesitic zircons shows correlations in geochemistry and absolute time that record evolution of a magmatic system over ~250 ka prior to eruption. Future work will combine U-Pb TIMS-TEA with solution isotopic analysis of Nd, Sr and Hf and will be applied to a host of datable minerals such as monazite, sphene, apatite, rutile, xenotime, and baddeleyite. These combined tools will provide access to an improved understanding of a wide range of igneous and metamorphic processes as a function of time.
机译:同位素稀释热电离质谱(ID-TIMS)U-Pb地质年代学的准确性提高,揭示了锆石种群的年龄复杂性,因此需要新的工具来了解锆石的生长与地质过程之间的关系。在进行TIMS同位素测量之前,通常通过离子交换分离法将过时的矿物中的U和Pb与其他元素分开。我们开发了一种方法,其中使用与基质匹配的外部液体校准的溶液雾化电感耦合等离子体扇区质谱法,重新溶解和分析完全相同体积的锆石中的微量元素。使用<0.5。毫升溶液,所得浓度<1。 Ti,Nb和Ta等元素为ppt,Zr为数十ppb。通过分析一系列标准溶液,锆石和程序空白,我们表明可以对Zr,Hf,Y,Sc和HREE进行准确的测量,而低浓度元素的测量值可以精确到<5。点我们对来自包括几个火山系统和一个变质样品的八座火山岩中的锆石进行了U-Pb ID-TIMS地质年代学与微量元素分析(此处称为U-Pb TIMS-TEA)的组合。与以前的原位微量元素分析相似,锆石地球化学在不同样品之间是不同的,并记录了成岩过程,例如分步结晶,同化和/或岩浆混合。 U-Pb TIMS-TEA具有独特的原位分析功能,能够以适当的年龄精度追踪辅助矿物中的地球化学演化,以解析至少2亿年历史的岩石中的岩浆作用过程。这提供了一种识别自生,前生和异生锆石的方法,并在ID-TIMS U-Pb地球年代学中导致更可靠的年龄解释。一套白垩纪的安山锆石显示出地球化学和绝对时间的相关性,记录了喷发前约250 ka以上岩浆系统的演化。未来的工作将把U-Pb TIMS-TEA与Nd,Sr和Hf的溶液同位素分析结合起来,并将应用于许多可数据的矿物,例如独居石,方晶石,磷灰石,金红石,xenotime和baddeleyite。这些组合的工具将提供对随着时间变化的各种火成岩和变质过程的更好理解。

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