HR: 13:40h
AN: V53E-01 [Abstracts]
TI: Stable Isotopes, Multidisciplinary Studies, and the Leadership of J.G. Liou in UHP
Metamorphism
AU: * Rumble, D
EM: rumble@gl.ciw.edu
AF: Geophysical Laboratory, 5251 Broad Branch Rd., NW, Washington, DC 20015-1305
United States
AB:
J.G. Liou has played a crucial role in improving knowledge of UHP metamorphism by leading multi-disciplinary,
multi-institutional teams of researchers and by encouraging new investigators and providing them access to samples.
Stable isotope geochemistry has made important contributions to understanding UHP metamorphism including: (1) The discovery
of O- and H-isotope signatures of meteoric water in UHP rocks from China and Kazakhstan demonstrates that their protoliths
originated at or near Earth's surface in a cold climate(a); (2) The mapping of contiguous tracts of outcrops extending over
distances of 100 km where both eclogites and their wall rocks retain unusually low d18O and dD is consistent with the
subduction and exhumation of UHP slabs as coherent structural units(b); (3) Analysis of samples from the Chinese Continental
Scientific Drilling project reveals not only that UHP metamorphic rocks have not exchanged O-isotopes with mantle rocks while
they were buried in the upper mantle but also that garnet peridotite slabs from the mantle have not exchanged with crustal
wall rocks(c).
Recent advances have resulted from multidisciplinary geochemical investigations. The analysis of zircons for both d18O and
U-Pb established the age of cold climate, meteoric water alteration of protoliths to be Neoproterozoic for UHP rocks from
Dabie and Sulu, China(d). Thus, O-isotopes plus age dating raises the possibility that evidence of snowball Earth conditions
has been preserved in an unlikely host: UHP metamorphic rocks. A comparison of U-Pb, Sm-Nd, and Rb-Sr isotope data with
analyses for d18O in coexisting minerals shows that discordant age dates correlate with mineral pairs that are not in
O-isotope exchange equilibrium(e). It may be seen that multidisciplinary geochemical investigations provide mutually
reinforcing data that greatly strengthens interpretations.
New discoveries of de novo microdiamonds accompanied by multiphase mineral inclusions in UHP metamorphosed crustal rocks
raise exciting possibilities for future stable isotope research on their origin(f). Micron-scale analytical techniques
including ion microprobe, "Nano-SIMS", and UV-laser ablation, should be applied to the mineral assemblages to determine
whether parent fluids were super-critical C-O-H fluids or carbonate-rich melts.
(a) Geochim.Cosmochim.Acta (GCA) 59, 2859; Euro.J.Mineral 8, 317; GCA 61, 1658.(b) GCA 62, 3307.(c) Amer.Mineral. 90, 857.(d)
GCA 66, 2299; GCA 68, 4145.(e) GCA 66, 625.(f) J.Metamorph.Geol. 21, 425.
DE: 3600 MINERALOGY AND PETROLOGY
DE: 3620 Mineral and crystal chemistry (1042)
DE: 3630 Experimental mineralogy and petrology
DE: 3660 Metamorphic petrology
DE: 3694 Instruments and techniques
SC: Volcanology, Geochemistry, Petrology [V]
MN: Fall Meeting 2005