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  4. Geochronological and geochemical features of the Cathaysia block (South China): New evidence for the Neoproterozoic breakup of Rodinia
 
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Geochronological and geochemical features of the Cathaysia block (South China): New evidence for the Neoproterozoic breakup of Rodinia

Journal
Precambrian Research
Journal Volume
187
Journal Issue
3-4
Pages
263-276
Date Issued
2011
Author(s)
BOR-MING JAHN  
Shu, Liang-Shu
Faure, Michel
Yu, Jin-Hai
Jahn, Bor-Ming  
DOI
10.1016/j.precamres.2011.03.003
URI
http://www.scopus.com/inward/record.url?eid=2-s2.0-79955745274&partnerID=MN8TOARS
http://scholars.lib.ntu.edu.tw/handle/123456789/364649
Abstract
The Cathaysia block is an important element for the reconstruction of the Proterozoic tectonic evolution of South China within the Rodinia supercontinent. The Pre-Devonian Cathaysia comprises two litho-tectonic units: a low-grade metamorphic unit and a basement unit; the former was a late Neoproterozoic-Ordovician sandy and muddy sedimentary sequence, the latter consists essentially of metamorphosed Neoproterozoic marine facies sedimentary and basaltic rocks, and a subordinate amount of Paleoproterozoic granites and amphibolites. This block has undergone several tectono-magmatic events. The first event occurred in the late Paleoproterozoic, at ca. 1.9-1.8Ga, and the tectonic-magmatic event dated at 0.45-0.40Ga was resulted from the early Paleozoic orogeny that made the Pre-Devonian rocks to undergo a regional lower greenschist to amphibolite facies metamorphism. The Neoproterozoic geodynamic event is poorly understood. In this paper, new U-Pb zircon age, whole-rock chemical and zircon Hf isotopic data for mafic and felsic igneous rocks are used to constrain the tectonic evolution of Cathaysia. Zircon SHRIMP U-Pb analyses on four mafic samples yielded rather similar Neoprotorozoic ages of 836±7Ma (gabbro), 841±12Ma (gabbro), 847±8Ma (gabbro) and 857±7Ma (basalt). Combined with the published isotopic age data, most of the mafic samples dated at 800-860Ma show geochemical characteristics of continental rift basalt. By contrast, rhyolitic samples with an age of 970Ma have a volcanic arc affinity. All mafic samples have LREE-enriched REE patterns, and non-ophiolitic trace element characteristics. However, the zircon Hf isotopic data of mafic samples show positive epsilon e{open}Hf(t) values (+4.1 to +10.5), suggesting that they were originated from a long-term depleted mantle source. All the available ages indicate that the Cathaysia block has registered two stages of Neoproterozoic magmatism. The younger stage corresponds to a continental rifting phase with emplacement of mafic rocks during the period of 860-800Ma, whereas the older stage represents an eruption of volcanic arc rocks at about 970Ma. These two magmatic stages correspond to two distinct tectonic settings within the framework of the geodynamic evolution of Cathaysia. Such a similar Neoproterozoic stratigraphy and magmatism between the Cathaysia, Yangtze and Australian blocks provide a significant line of evidence for placing the Cathaysia block within the Rodinia supercontinent. © 2011 Elsevier B.V.
Subjects
Cathaysia block; Geochemistry and Hf isotope; Mafic igneous rocks; Neoproterozoic rifting; Rhyolite; SHRIMP U-Pb zircon dating; South China
SDGs

[SDGs]SDG14

Other Subjects
geochemistry; geochronology; hafnium; magmatism; Ordovician; Proterozoic; rhyolite; rifting; Rodinia; SHRIMP dating; supercontinent; tectonic evolution; uranium-lead dating; zircon; Cathaysia Block; China
Type
journal article

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