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Small-volume U-Pb zircon geochronology by laser ablation-multicollector-ICP-MS

机译:激光烧蚀-多收集器-ICP-MS的小体积U-Pb锆石年代学

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摘要

U-Pb zircon geochronology is hampered by problems acquiring meaningful geologic ages on zoned grains that retain isotope signatures from multiple growth or thermal events. We present a new method using laser ablation-multicollector-inductively coupled plasma-mass spectrometry to overcome complications associated with intricately zoned zircon crystals through in situ sampling of zircon volumes as small as 12-14 μm in diameter by 4-5 m in depth (<3 ng of zircon). Using Channeltron multipliers to monitor Pb intensities in conjunction with a total ion counting method and errors calculated as function of the number of counts, the small-volume technique reproduced published ages on eight Mesoproterozoic-Cretaceous secondary zircon standards precise and accurate within 2%, and an age -1 Ma too young on a Oligocene-aged grain. Two initial applications of the small-volume technique — the detrital zircon provenance of fine-grained mudstones and shales and the creation of zircon U-Pb age maps to investigate the detrital and metamorphic history of a granulite-facies paragneiss — demonstrate the utility of this technique to a variety of geologic problems and confirm the viability of laser ablation-multicollector-inductively coupled plasma-mass spectrometry as a tool for high spatial resolution U-Pb geochronology.
机译:U-Pb锆石的地质年代学受到问题的困扰,因为这些问题无法在分区晶粒上获取有意义的地质年龄,而该年龄保留了来自多个生长或热事件的同位素特征。我们提出了一种使用激光烧蚀-多收集器-电感耦合等离子体质谱联用的新方法,以通过原位采样直径为12-14μm,深度为4-5 m的锆石体积来克服与复杂分区的锆石晶体相关的复杂性( <3 ng锆石)。通过使用Channeltron乘法器结合总离子计数方法和根据计数数量计算的误差来监测Pb强度,这种小体积技术可以精确地复制8个中元古代-白垩纪次生锆石标准的公布年龄,并且在渐新世年龄的谷粒上年龄小于-1 Ma。小体积技术的两个最初应用-细粒泥岩和页岩的碎屑锆石物产以及创建锆石U-Pb年龄图以调查粒相-细粉岩的碎屑和变质历史-证明了这种方法的实用性技术解决了各种地质问题,并确认了激光烧蚀-多收集器-电感耦合等离子体质谱法的可行性,该方法可用于实现高空间分辨率的U-Pb地质年代学。

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