4.4 Article

Zircon response to high-grade metamorphism as revealed by U-Pb and cathodoluminescence studies

期刊

INTERNATIONAL JOURNAL OF EARTH SCIENCES
卷 101, 期 8, 页码 2105-2123

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SPRINGER
DOI: 10.1007/s00531-012-0772-5

关键词

Bohemian Massif; Granulite-facies; Migmatite; U-Pb zircon; Variscides

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  1. Bayerische Landesamt fur Umwelt

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Correct interpretation of zircon ages from high-grade metamorphic terrains poses a major challenge because of the differential response of the U-Pb system to metamorphism, and many aspects like pressure-temperature conditions, metamorphic mineral transformations and textural properties of the zircon crystals have to be explored. A large (c. 450 km(2)) coherent migmatite complex was recently discovered in the Bohemian Massif, Central European Variscides. Rocks from this complex are characterized by granulite- and amphibolite-facies mineral assemblages and, based on compositional and isotopic trends, are identified as the remnants of a magma body derived from mixing between tonalite and supracrustal rocks. Zircon crystals from the migmatites are exclusively large (200-400 mu m) and yield Pb-207/Pb-206 evaporation ages between 342-328 Ma and single-grain zircon fractions analysed by U-Pb ID-TIMS method plot along the concordia curve between 342 and 325 Ma. High-resolution U-Pb SHRIMP analyses substantiate the existence of a resolvable age variability and yield older Pb-206/U-238 ages (342-330 Ma, weighted mean age = 333.6 +/- A 3.1 Ma) for inner zone domains without relict cores and younger Pb-206/U-238 ages (333-320 Ma, weighted mean age = 326.0 +/- A 2.8 Ma) for rim domains. Pre-metamorphic cores were identified only in one sample (Pb-206/U-238 ages at 375.0 +/- A 3.9, 420.3 +/- A 4.4 and 426.2 +/- A 4.4 Ma). Most zircon ages bracket the time span between granulite-facies metamorphism in the Bohemian Massif (similar to 345 Ma) and the late-Variscan anatectic overprint (Bavarian phase, similar to 325 Ma). It is argued that pre-existing zircon was variously affected by these metamorphic events and that primary magmatic growth zones were replaced by secondary textures as a result of diffusion reaction processes and replacement of zircon by dissolution and recrystallization followed by new zircon rim growth. Collectively, the results show that the zircons equilibrated during high-grade metamorphism and record partial loss of radiogenic Pb during post-peak granulite events and new growth under subsequent anatectic conditions.

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