揭示高温至超高温变质岩的长时间U-Pb锆石年代学记录:对物源研究的意义

IF 8.5 1区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY Geoscience frontiers Pub Date : 2023-03-01 DOI:10.1016/j.gsf.2022.101515
Mahyra Tedeschi , Pedro Leonardo Rossi Vieira , Matheus Kuchenbecker , Bruno V. Ribeiro , Vitor Barrote , Humberto Reis , Laura Stutenbecker , Cristiano Lana , Antonio Pedrosa-Soares , Ivo Dussin
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引用次数: 2

摘要

碎屑锆石年龄评价是盆地分析的重要方法,但其存在一定的偏差,可能影响沉积物物源的准确研究。高温至超高温(HT-UHT)变质作用(特别是高温变质作用);850°C)是在基于U-Pb碎屑锆石的物源研究中产生偏差的一个自然原因,因为在这些极端和经常延长的条件下,来自岩石的锆石经常产生持久的、明显一致的地质年代学记录。这种年龄扩展可能是由于原生U-Pb锆石系统的扰动,同样也可能是由于多次和/或长时间变质事件中的(再)结晶过程。本文对太古宙、新元古代和古生代HT-UHT变质岩的现有地质年代学数据进行了重新评估,这些数据采用不同的技术(SIMS和LA-ICP-MS)获得,显示出不同的成分,表明HT-UHT变质可能导致地质意义不明确的模式和年龄分布。因此,它可能导致对U-Pb碎屑锆石物源分析的误解,特别是在这种极端温度条件下变质的沉积岩中。为了评估碎屑锆石记录中是否存在与高温-超高温变质有关的偏差,我们提出了一种数据采集和解释工作流程,结合多代理方法:(i)原位U-Pb测年与Hf分析相结合,以检索来源的同位素组成;(ii)整合岩石年代学研究,以确定高温-超高温变质事件的指纹。提出的工作流程在一个理论和一个自然实例的调查中得到了验证,从而更好地表征了沉积来源、最大沉积年龄和盆地的构造背景。我们的工作流程允许评估高温-超高温变质作用所造成的偏差,以及对U-Pb碎屑锆石记录造成的干扰,特别是对经历高温-超高温变质作用的沉积岩,最后提出克服这些问题的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Unravelling the protracted U-Pb zircon geochronological record of high to ultrahigh temperature metamorphic rocks: Implications for provenance investigations

The assessment of detrital zircon age records is a key method in basin analysis, but it is prone to several biases that may compromise accurate sedimentary provenance investigations. High to ultrahigh temperature (HT-UHT) metamorphism (especially if T > 850 °C) is herein presented as a natural cause of bias in provenance studies based on U-Pb detrital zircon ages, since zircon from rocks submitted to these extreme and often prolonged conditions frequently yield protracted, apparently concordant, geochronological records. Such age spreading can result from disturbance of the primary U-Pb zircon system, likewise from (re)crystallization processes during multiple and/or prolonged metamorphic events. In this contribution, available geochronological data on Archean, Neoproterozoic and Palaeozoic HT-UHT metamorphic rocks, acquired by different techniques (SIMS and LA-ICP-MS) and showing distinct compositions, are reassessed to demonstrate HT-UHT metamorphism may result in modes and age distributions of unclear geological meaning. As a consequence, it may induce misinterpretations on U-Pb detrital zircon provenance analyses, particularly in sedimentary rocks metamorphosed under such extreme temperature conditions. To evaluate the presence of HT-UHT metamorphism-related bias in the detrital zircon record, we suggest a workflow for data acquisition and interpretation, combining a multi-proxy approach with: (i) in situ U-Pb dating coupled with Hf analyses to retrieve the isotopic composition of the sources, and (ii) the integration of a petrochronological investigation to typify fingerprints of the HT-UHT metamorphic event. The proposed workflow is validated in the investigation of one theoretical and one natural example allowing a better characterization of the sedimentary sources, maximum depositional ages, and the tectonic setting of the basin. Our workflow allows to the appraisal of biases imposed by HT-UHT metamorphism and resulting disturbances in the U-Pb detrital zircon record, particularly for sedimentary rocks that underwent HT-UHT metamorphism and, finally, suggests ways to overcome these issues.

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来源期刊
Geoscience frontiers
Geoscience frontiers Earth and Planetary Sciences-General Earth and Planetary Sciences
CiteScore
17.80
自引率
3.40%
发文量
147
审稿时长
35 days
期刊介绍: Geoscience Frontiers (GSF) is the Journal of China University of Geosciences (Beijing) and Peking University. It publishes peer-reviewed research articles and reviews in interdisciplinary fields of Earth and Planetary Sciences. GSF covers various research areas including petrology and geochemistry, lithospheric architecture and mantle dynamics, global tectonics, economic geology and fuel exploration, geophysics, stratigraphy and paleontology, environmental and engineering geology, astrogeology, and the nexus of resources-energy-emissions-climate under Sustainable Development Goals. The journal aims to bridge innovative, provocative, and challenging concepts and models in these fields, providing insights on correlations and evolution.
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