4.7 Article

Determination of natural Cu-isotope variation by plasma-source mass spectrometry: implications for use as geochemical tracers

Journal

CHEMICAL GEOLOGY
Volume 163, Issue 1-4, Pages 139-149

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/S0009-2541(99)00076-5

Keywords

Cu-isotopes; sulphides; plasma-source mass spectrometry; hydrothermal systems; black smokers; isotope fractionation

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Techniques for the high precision measurement of Cu-65/Cu-63 ratios by multiple-collector plasma-source mass spectrometry has been developed. Two approaches, namely Zn-doping and sample-standard bracketing, have been exploited. By using the sample-standard bracketing technique, a range of samples including native copper, Cu-carbonate and Cu-sulphides from terrestrial and marine environments have been analysed. An overall variation in Cu-65/Cu-63 Of 22 parts per 10(4) (22 epsilon units)is observed. This is more than 30 times the 2 sigma analytical uncertainty of the technique employed, and thus demonstrates the great potential for using stable Cu isotopes as tracers in geological and planetary processes. The variations in epsilon(65)Cu values observed in this study display some regularity. Those samples involving formation through low temperature aqueous solutions display large differences in. epsilon(65)Cu values even at a single locality, whereas chalcopyrite samples hosted in igneous rocks show similar Cu-isotope compositions worldwide. This indicates that the epsilon(65)Cu variations arise principally through mass fractionation in low temperature aqueous processes, rather than through source heterogeneity. In contrast to continental sulphides, chalcopyrites from black smoker sulphide chimneys on the ocean floor show large variations in epsilon(65)Cu values. Relative to active high temperature hydrothermal vents, the old inactive vent deposits are enriched in Cu-63 and show smaller variations in epsilon(65)Cu values. Within in a single active chimney, Cu isotopes become lighter from bottom to top. This variation pattern is explained tentatively by means of a two-stage-process model, which involves: (1) the preferential leaching of Cu-65 by hydrothermal processes, and (2) subsequent isotopic exchange between the early formed Cu-sulphides and Cu-65-depleted late-stage hydrothermal fluids. This new capability for Cu-isotope measurement is expected to have a major impact across disciplines ranging from cosmochemistry and geochemistry through biogeochemistry to biochemistry and alimentology. (C) 2000 Elsevier Science B.V. All rights reserved.

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