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Rb-Sr and K-Ar systems of biotite in surface environments regulated by weathering processes with implications for isotopic dating and hydrological cycles of Sr isotopes

机译:受风化过程调节的黑云母在表面环境中的Rb-Sr和K-Ar体系对Sr同位素的同位素定年和水文循环有影响

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Biotite is widely used for Rb-Sr and K-Ar isotopic dating and influences Sr isotope geochemistry of hydrological regimes. The isotopic system of biotite behaves diversely in response to surface weathering; i.e. the complete preservation of original Rb-Sr and K-Ar isotopic ages or dramatic reduction. In this study, we have explored the relation between the behavior of isotopic systems and complex weathering processes of biotites in the weathering profiles distributed on the Mesozoic granitoids in South Korea. In the lower parts of the profiles, biotite in the early stages of weathering was transformed into either oxidized biotite or hydrobiotite, with a mass release of Sr-87 and Ar-40 forced by the rapid oxidation of ferrous iron. During the transformation to oxidized biotite, Sr-87 and Ar-40 were preferentially released relative to Rb and K, respectively, via solid-state diffusion through the biotite lattice, resulting in a drastic reduction of original isotopic age. The reduction of Rb-Sr age was greater than that of K-Ar age because K was preferentially released over Rb whereas Sr-87 and Ar-40 were released proportionally to each other. However, during the transformation of biotite to hydrobiotite (i.e., to regularly interstratified biotite-vermiculite), Sr-87, Rb, Ar-40, and K were completely retained in the alternating biotite interlayer, and thus the original isotopic age can be preserved. In the upper parts of the profiles, where iron oxidation was almost completed, 87 Sr, Rb, Ar-40, and K were gradually and proportionally released, with no further significant change in isotopic age during the gradual transformation of the early-formed oxidized biotite into hydrobiotite and vermiculite or during their final decomposition to kaolinite. The ratios and amounts of isotopes released from weathered biotites are dependent upon the degree of iron oxidation and the pathways of mineralogical transformation. Regional and local variations in isotopic systems affected by particular weathering processes should be considered when dating biotite or biotite-bearing rocks in weathering environments, modeling the transfer of Sr isotopes to hydrologic regimes, and tracking the provenance of sediments. (c) 2006 Elsevier Inc. All rights reserved.
机译:黑云母被广泛用于Rb-Sr和K-Ar同位素测年,并影响水文条件下Sr同位素地球化学。黑云母的同位素系统对表面风化的反应各不相同。即完全保留原始的Rb-Sr和K-Ar同位素年龄或显着减少。在这项研究中,我们在分布于韩国中生代花岗岩上的风化剖面中探索了同位素系统的行为与黑云母复杂的风化过程之间的关系。在剖面的下部,风化早期的黑云母转变为氧化黑云母或水成黑云母,并由于亚铁的快速氧化而大量释放Sr-87和Ar-40。在向氧化黑云母转变过程中,Sr-87和Ar-40分别通过黑云母晶格中的固态扩散而相对于Rb和K优先释放,从而导致原始同位素年龄的急剧降低。 Rb-Sr年龄的减少大于K-Ar年龄的减少,因为K优先于Rb释放,而Sr-87和Ar-40则按比例释放。然而,在黑云母向水黑云母转变(即定期复层的黑云母-ver石)的过程中,Sr-87,Rb,Ar-40和K完全保留在交替的黑云母夹层中,因此可以保留原始同位素年龄。在剖面的上部,铁的氧化几乎完成了,逐渐并成比例地释放了87 Sr,Rb,Ar-40和K,在早期形成的氧化态的逐渐转变过程中,同位素年龄没有进一步的显着变化。黑云母变成水成云母和ver石,或在它们最终分解为高岭石期间。从风化黑云母中释放出的同位素的比例和数量取决于铁的氧化程度和矿物学转化的途径。在风化环境中对黑云母或含黑云母的岩石进行定年,模拟Sr同位素向水文状况的转移以及跟踪沉积物的来源时,应考虑受特定风化过程影响的同位素系统的区域和局部变化。 (c)2006 Elsevier Inc.保留所有权利。

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