4.7 Article

Rapid and accurate U-Th dating of ancient carbonates using inductively coupled plasma-quadrupole mass spectrometry

期刊

CHEMICAL GEOLOGY
卷 272, 期 1-4, 页码 1-11

出版社

ELSEVIER
DOI: 10.1016/j.chemgeo.2010.01.007

关键词

U-Th dating; ICP-QMS; Deep-sea corals; Stalagmites; Carbonates; UTEVA resin

资金

  1. ANR Newton [Blanc06-1_139504]
  2. EU-HERMES IP [GOCE-CT-2005-511234-1]

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Here, the potential for rapid and accurate U-Th dating technique of marine aragonite skeletons (deep-sea corals, Lophelia pertusa) and secondary calcite deposits (speleothems and stalagmites) has been explored using inductively coupled plasma-quadrupole mass spectrometry (ICP-QMS). The analytical procedure includes a largely simplified chemical separation technique for uranium (U) and thorium (Th) using UTEVA resin. The developed technique permits simultaneous quantification of uranium [U-238] and thorium [Th-232] concentrations and their respective isotopic composition, required for U-series disequilibrium dating. Up to 50 U-Th dates per day can be achieved through ICP-QMS with delta U-234 and delta Th-230 reproducibility (2 sigma) of 3-4 parts per thousand and 1%, respectively. The high sensitivity (>3.0 x 10(5) cpsippb) together with low background (<0.5 cps) on each mass between 228 and 236 amu allowed U-Th dating of ancient deep-water corals (15-260 kyr) and stalagmites (30-85 kyr) at precision levels of less than 2%. Consequently, the combination of simplified chemistry using UTEVA with state-of-the-art ICP-QMS isotopic measurements that do not require a U-Th separation step now provides an extremely rapid and low-cost U-series dating technology. The level of precision is most convenient for numerous geochronological applications, such as the determination of climatic influences on ecosystem development and carbonate precipitation. As a first-example application we present ICP-QMS U-Th dates of North Atlantic deep-water coral fragments retrieved in the southeastern Porcupine Seabight (MD01-2463G. Mound Therese), indicating a purely interglacial growth of deep-water corals on so-called carbonate mounds over several climate cycles. (C) 2010 Elsevier B.V. All rights reserved.

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