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Pb nanospheres in ancient zircon yield model ages for zircon formation and Pb mobilization

机译:古代锆石的Pb纳米球产量模型时代的锆石形成和Pb动员

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摘要

Nanospheres of lead (Pb) have recently been identified in zircon (ZrSiO4) with the potential to compromise the veracity of U-Pb age determinations. The key assumption that the determined age is robust against the effects of Pb mobility, as long as Pb is not lost from the zircon during subsequent geological events, is now in question. To determine the effect of nanosphere formation on age determination, and whether analysis of nanospheres can yield additional information about the timing of both zircon growth and nanosphere formation, zircons from the Napier Complex in Enderby Land, East Antarctica, were investigated by high-spatial resolution NanoSIMS (Secondary Ion Mass Spectrometry) mapping. Conventional SIMS analyses with >µm resolution potentially mixes Pb from multiple nanospheres with the zircon host, yielding variable average values and therefore unreliable ages. NanoSIMS analyses were obtained of 207Pb/206Pb in nanospheres a few nanometres in diameter that were resolved from 207Pb/206Pb measurements in the zircon host. We demonstrate that analysis for 207Pb/206Pb in multiple individual Pb nanospheres, along with separate analysis of 207Pb/206Pb in the zircon host, can not only accurately yield the age of zircon crystallization, but also the time of nanosphere formation resulting from Pb mobilization during metamorphism. Model ages for both events can be derived that are correlated due to the limited range of possible solutions that can be satisfied by the measured 207Pb/206Pb ratios of nanospheres and zircon host. For the Napier Complex zircons, this yields a model age of ca 3110 Ma for zircon formation and a late Archean model age of 2610 Ma for the metamorphism that produced the nanospheres. The Nanosphere Model Age (NMA) method constrains both the crystallization age and age of the metamorphism to ~±135 Ma, a significant improvement on errors derived from counting statistics.
机译:最近在锆石(ZrSiO4)中发现了铅(Pb)纳米球,它有可能损害U-Pb年龄测定的准确性。只要确定的年龄在随后的地质事件中不会从锆石中流失,就可以确定年龄对铅迁移的影响是可靠的关键假设。为了确定纳米球形成对年龄确定的影响,以及纳米球的分析是否可以提供有关锆石生长和纳米球形成的时间的更多信息,通过高空间分辨率研究了南极东部恩德比地纳皮尔综合体中的锆石。 NanoSIMS(二次离子质谱)绘图。分辨率大于µm的常规SIMS分析可能会将多个纳米球中的Pb与锆石基质混合,产生可变的平均值,因此年龄不可靠。通过从 207 Pb / 206 <解析的直径为几纳米的纳米球中的 207 Pb / 206 Pb进行了NanoSIMS分析。 / sup>锆石主机中的Pb测量值。我们证明了在多个单个Pb纳米球中对 207 Pb / 206 Pb的分析,以及对 207 Pb / 206 <锆石宿主中的Pb不仅可以准确地得出锆石的结晶年龄,而且还可以准确地反映变质过程中Pb动员所导致的纳米球形成时间。由于纳米球和锆石的 207 Pb / 206 Pb比的测量值可以满足有限的可能解的范围,因此可以得出这两个事件的模型年龄,它们是相关的主办。对于纳皮尔复杂的锆石,生成锆石的模型年龄约为3110 Ma,而产生纳米球的变质作用则为晚期的太古宙模型年龄2610 Ma。纳米球模型时代(NMA)方法将结晶时代和变质时代都限制在〜±135 Ma,这大大改善了从计数统计得出的误差。

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