Zn and Cu isotopic variability in the Alexandrinka volcanic-hosted massive sulphide (VHMS) ore deposit, Urals, Russia

被引:210
作者
Mason, TFD
Weiss, DJ
Chapman, JB
Wilkinson, JJ
Tessalina, SG
Spiro, B
Horstwood, MSA
Spratt, J
Coles, BJ
机构
[1] Univ London Imperial Coll Sci & Technol, Dept Earth Sci & Engn, London SW7 2AZ, England
[2] Nat Hist Museum, Dept Mineral, London SW7 5BD, England
[3] Inst Phys Globe, Lab Geochim & Cosmochim, F-75252 Paris, France
[4] NERC, Isotope Geosci Lab, Keyworth NG12 5GG, Notts, England
基金
英国自然环境研究理事会;
关键词
MC-ICP-MS; VHMS deposits; seafloor hydrothermal vent system; isotope fractionation; copper isotopes; zinc isotopes;
D O I
10.1016/j.chemgeo.2005.04.011
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Copper and Zn isotope ratios of well-characterized samples from three ore facies in the Devonian Alexandrinka volcanic-hosted massive sulphide (VHMS) deposit, southern Urals, were measured using multi collector ICP-MS (MC-ICP-MS) and show variations linked to depositional environment and mineralogy. The samples analysed derived from: a) hydrothermal-metasomatic vein stockwork, b) a hydrothermal vent chimney, and c) reworked elastic sulphides. As the deposit has not been significantly deformed or metamorphosed after its formation, it represents a pristine example of ancient seafloor mineralization. Variations in delta Cu-65 (where delta Cu-65=[(Cu-65/Cu-63)(sample)(Cu-65/Cu-63)(standard)-1]*1000) and delta Zn-66 (where delta Zn-66 = [(Zn-66/Zn-64)(sample)/(Zn-66/Zn-64)(standard)-1]*1000) of 0.63 and 0.66 parts per thousand, respectively, are significantly greater than analytical uncertainty for both isotope ratios (+/- 0.07 parts per thousand, 2 sigma). Very limited isotopic fractionation is observed in primary Cu minerals from the stockwork and chimney, whereas the Zn isotopic composition of the stockwork varies significantly with the mineralogy. Chalcopyrite-bearing samples from the stock-work have lighter delta Zn-66 by -0.4 parts per thousand relative to sphalerite dominated samples, which may be due to equilibrium partitioning of isotopically light Zn into chalcopyrite during its precipitation. delta Zn-66 also showed significant variation in the chimney, with an enrichment in heavy isotopes toward the chimney rim of similar to 0.26 parts per thousand, which may be caused by changing temperature (hence fractionation factor), or Raleigh distillation. Post-depositional seafloor oxidative dissolution and re-precipitation in the clastic sediments, possibly coupled with leaching, led to systematic negative shifts in Cu and Zn isotope compositions relative to the primary sulphides. Copper shows the most pronounced fractionation, consistent with the reduction of Cu(II) to Cu(I) during supergene mineralization. However, the restricted range in delta Cu-65 is unlike modem sulphides at mid oceanic ridges where a large range of Cu isotope, of up to 3 parts per thousand has been observed [Rouxel, O., Fouquet, Y, Ludden, J.N., 2004. Copper isotope systematics of the Lucky Strike, Rainbow, and Logatchev sea-floor hydrothermal fields on the Mid-Atlantic Ridge. Econ. Geol. 99, 585-600; Zhu, X.K., O'Nions, R.K., Guo, Y., Belshaw, N.S., Rickard, D., 2000. Determination of natural Cu-isotope variation by plasma source mass spectrometry: implications for use as geochemical tracers. Chem. Geol. 163, 139-149]. (c) 2005 Elsevier B.V. All rights reserved.
引用
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页码:170 / 187
页数:18
相关论文
共 36 条
[1]  
Archer C, 2002, GEOCHIM COSMOCHIM AC, V66, pA26
[2]   Mineralogical and S isotopic features of the supergene profile of the Zapadno-Ozernoe massive sulphide and Au-bearing gossan deposit, South Urals [J].
Belogub, EV ;
Novoselov, CA ;
Spiro, B ;
Yakovleva, BA .
MINERALOGICAL MAGAZINE, 2003, 67 (02) :339-354
[3]   A SEARCH FOR VARIATIONS IN THE RELATIVE ABUNDANCE OF THE ZINC ISOTOPES IN NATURE [J].
BLIX, R ;
VONUBISCH, H ;
WICKMAN, FE .
GEOCHIMICA ET COSMOCHIMICA ACTA, 1957, 11 (03) :162-164
[4]   AN X-RAY PHOTOELECTRON SPECTROSCOPIC STUDY OF THE OXIDATION OF CHALCOPYRITE [J].
BUCKLEY, AN ;
WOODS, R .
AUSTRALIAN JOURNAL OF CHEMISTRY, 1984, 37 (12) :2403-2413
[5]  
CHAPMAN J, UNPUB GEOSTAND GEOAN
[6]  
Deer W. A., 1992, INTRO ROCK FORMING M
[7]   Experimental study of the copper isotope fractionation between aqueous Cu(II) and covellite, CuS [J].
Ehrlich, S ;
Butler, I ;
Halicz, L ;
Rickard, D ;
Oldroyd, A ;
Matthews, A .
CHEMICAL GEOLOGY, 2004, 209 (3-4) :259-269
[8]   Natural variations detected in the isotopic composition of copper: possible applications to archaeology and geochemistry [J].
Gale, NH ;
Woodhead, AP ;
Stos-Gale, ZA ;
Walder, A ;
Bowen, I .
INTERNATIONAL JOURNAL OF MASS SPECTROMETRY, 1999, 184 (01) :1-9
[9]   Tracing Cu and Fe from source to porphyry: in situ determination of Cu and Fe isotope ratios in sulfides from the Grasberg Cu-Au deposit [J].
Graham, S ;
Pearson, N ;
Jackson, S ;
Griffin, W ;
O'Reilly, SY .
CHEMICAL GEOLOGY, 2004, 207 (3-4) :147-169
[10]   MOSSBAUER EFFECT STUDIES ON CUBANITE (CUFE2S3) AND RELATED IRON SULPHIDES [J].
GREENWOOD, NN ;
WHITFIELD, HJ .
JOURNAL OF THE CHEMICAL SOCIETY A -INORGANIC PHYSICAL THEORETICAL, 1968, (07) :1697-+