HR: 0800h
AN: V41D-1492 [Abstracts]
TI: Li Isotope Variations in Mantle Derived Materials
AU: Jeffcoate, A
EM: a.jeffcoate@bris.ac.uk
AF: Department of Earth Sciences, University of Bristol, Bristol, BS8 1RJ
United Kingdom
AU: * Elliott, T
EM: tim.elliott@bris.ac.uk
AF: Department of Earth Sciences, University of Bristol, Bristol, BS8 1RJ
United Kingdom
AU: Kasemann, S
EM: simone.kasemann@ed.ac.uk
AF: School of Geosciences, University of Edinburgh, Edinburgh, EH9 3JW
United Kingdom
AU: Ionov, D
EM: ionov@em.uni-frankfurt.de
AF: Institut fuer Mineralogie, J.W. Gorthe-Universitaet, Frankfurt/Main, 60054
Germany
AU: Regelous, M
EM: M.Regelous@bristol.ac.uk
AF: Department of Earth Sciences, University of Bristol, Bristol, BS8 1RJ
United Kingdom
AB:
The heavy Li isotope composition (high δ7Li) of subducting assemblages (1) should be evident in recycled material
that returns to the surface in mantle derived melts. We have analysed a wide range of ocean island basalts (OIB) and
document Li isotopic variations of ~8‰, well in excess of analytical uncertainty (~0.3‰). Our most
extreme values are found in Samoan lavas (δ7Li 11‰). Strikingly, δ7Li values of all OIB
head to values higher than fertile mantle nodules and N-MORB which define a mantle baseline around 3-3.5‰. No
δ7Li values significantly lighter than this mantle baseline are found in whole rock OIB. This strongly implies
that it is not the dehydrated, subduction zone processed oceanic crust that is recycled in many OIB, which Zack et al. (2)
have shown to be isotopically light. Subduction-influenced mantle, dragged down with the slab is a more likely candidate for
the heavy Li signatures.
Despite the coherent picture for the widespread influence of recycled material in the mantle provided by Li isotope analyses
in whole rocks, there is considerable complexity evident at the grain scale. Mantle xenoliths show variable
olivine-clinopyroxene fractionations indicative of disequilibrium. Our bulk measurements show olivines with δ7Li
varying from 3-5‰ but co-existing clinopyroxenes ranging from +7 to -9‰. Moreover, in-situ analyses of Li
isotope ratios by ion probe reveal major isotopic zonations (up to 40‰ core-rim variations in a single cm sized
crystal) in both lava phenocrysts and mantle xenoliths phases with major element equilibrium temperatures in excess of
900°. Such features appear to result from recent, magmatic redistribution of Li and isotopic fractionation as a result
of the faster diffusion of 6Li relative to 7Li. Such diffusive processes provide a potential explanation for
extremely light δ7Li (-17‰) of some clinopyroxenes found in mantle xenoliths (3).
1. L. H. Chan, et al., EPSL 108, 151-160 (1992); 2. T. Zack, et al., EPSL 208, 279-290 (2003); 3. Y. Nishio et al., EPSL
217, 245-261 (2004).
DE: 1025 Composition of the mantle
DE: 1041 Stable isotope geochemistry (0454, 4870)
SC: Volcanology, Geochemistry, Petrology [V]
MN: Fall Meeting 2005