TY - JOUR
T1 - Partitioning of Ni, Co and V between spinel-structured oxides and silicate melts
T2 - Importance of spinel composition
AU - Righter, Kevin
AU - Leeman, W. P.
AU - Hervig, Richard
N1 - Funding Information:
This research is supported by NSF grant EAR-0074036 and a NASA RTOP to Righter. Leeman's efforts on this project were partly supported by NSF Grant EAR-0003612. K. Domanik, C. Schwandt and L. Le assisted with electron microprobe analysis. Discussions with M.J. Drake, J.J. Papike, C.K. Shearer, A. Brandon, J. Jones and C.-T. Lee were useful in understanding these data. Comments on an earlier version of this paper by D. Canil, R. Nielsen, W. van Westrenen and J. van Orman, as well as two anonymous journal reviewers, greatly improved the presentation. [R.L.R.]
PY - 2006/3/20
Y1 - 2006/3/20
N2 - Partitioning of Ni, Co and V between Cr-rich spinels and basaltic melt has been studied experimentally between 1150 and 1325 °C, and at controlled oxygen fugacity from the Co-CoO buffer to slightly above the hematite-magnetite buffer. These new results, together with new Ni, Co and V analyses of experimental run products from Leeman [Leeman, W.P., 1974. Experimental determination of the partitioning of divalent cations between olivine and basaltic liquid, Pt. II. PhD thesis, Univ. Oregon, 231-337.], show that experimentally determined spinel-melt partition coefficients (D) are dependent upon temperature (T), oxygen fugacity (fO2) and spinel composition. In particular, partition coefficients determined on doped systems are higher than those in natural (undoped) systems, perhaps due to changing activity coefficients over the composition range defined by the experimental data. Using our new results and published runs (n=85), we obtain a multilinear regression equation that predicts experimental D(V) values as a function of T, fO2, concentration of V in melt and spinel composition. This equation allows prediction of D(V) spinel/melt values for natural mafic liquids at relevant crystallization conditions. Similarly, D(Ni) and D(Co) values can be inferred from our experiments at redox conditions approaching the QFM buffer, temperatures of 1150 to 1250 °C and spinel composition (early Cr-bearing and later Ti-magnetite) appropriate for basic magma differentiation. When coupled with major element modelling of liquid lines of descent, these values (D(Ni) sp/ melt=10 and D(Co) sp/melt=5) closely reproduce the compositional variation observed in komatiite, mid-ocean ridge basalt (MORB), ocean island basalt (OIB) and basalt to rhyolite suites.
AB - Partitioning of Ni, Co and V between Cr-rich spinels and basaltic melt has been studied experimentally between 1150 and 1325 °C, and at controlled oxygen fugacity from the Co-CoO buffer to slightly above the hematite-magnetite buffer. These new results, together with new Ni, Co and V analyses of experimental run products from Leeman [Leeman, W.P., 1974. Experimental determination of the partitioning of divalent cations between olivine and basaltic liquid, Pt. II. PhD thesis, Univ. Oregon, 231-337.], show that experimentally determined spinel-melt partition coefficients (D) are dependent upon temperature (T), oxygen fugacity (fO2) and spinel composition. In particular, partition coefficients determined on doped systems are higher than those in natural (undoped) systems, perhaps due to changing activity coefficients over the composition range defined by the experimental data. Using our new results and published runs (n=85), we obtain a multilinear regression equation that predicts experimental D(V) values as a function of T, fO2, concentration of V in melt and spinel composition. This equation allows prediction of D(V) spinel/melt values for natural mafic liquids at relevant crystallization conditions. Similarly, D(Ni) and D(Co) values can be inferred from our experiments at redox conditions approaching the QFM buffer, temperatures of 1150 to 1250 °C and spinel composition (early Cr-bearing and later Ti-magnetite) appropriate for basic magma differentiation. When coupled with major element modelling of liquid lines of descent, these values (D(Ni) sp/ melt=10 and D(Co) sp/melt=5) closely reproduce the compositional variation observed in komatiite, mid-ocean ridge basalt (MORB), ocean island basalt (OIB) and basalt to rhyolite suites.
KW - Chromite
KW - Fractional crystallization
KW - Magnetite
KW - Spinel
KW - Trace element partitioning
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U2 - 10.1016/j.chemgeo.2005.05.011
DO - 10.1016/j.chemgeo.2005.05.011
M3 - Article
AN - SCOPUS:33344473309
SN - 0009-2541
VL - 227
SP - 1
EP - 25
JO - Chemical Geology
JF - Chemical Geology
IS - 1-2
ER -