Olivine-Hosted Melt Inclusions Track Progressive Dehydration Reactions in Subducting Slabs Across Volcanic Arcs

Author:

Brahm Raimundo1ORCID,Coulthard Jr Daniel2,Zellmer Georg2ORCID,Kuritani Takeshi3,Sakamoto Naoya4,Taniuchi Hajime56,Yurimoto Hisayoshi4,Nakagawa Mitsuhiro3,Sato Eiichi7

Affiliation:

1. School of Geography, Environment and Earth Sciences, Te Herenga Waka—Victoria University of Wellington , PO Box 600, Wellington 6140, New Zealand

2. School of Agriculture and Environment, Massey University , Private Bag 11 222, Palmerston North 4442, New Zealand

3. Hokkaido University Graduate School of Science, , 8 Kita 10 Jonishi, Kita Ward, Sapporo, Hokkaido 060-0810, Japan

4. Isotope Imaging Laboratory , Creative Research Institution, Hokkaido University, Sapporo, Hokkaido 001-0020, Japan

5. Shizuoka University Department of Geoscience, Faculty of Science, , Shizuoka 422-8529, Japan

6. Geological Survey of Japan, National Institute of Advanced Industrial Science and Technology , Tsukuba 305-8567, Japan

7. Earth Science Laboratory, Hokkaido University of Education , Asahikawa, Hokkaido 070-0825, Japan

Abstract

Abstract The stability and breakdown of mineral phases in subducting slabs control the cycling of trace elements through subduction zones. Stability of key minerals and the partitioning of trace elements between these minerals and liquid phases of interests have been charted by natural sample analysis and experimental constraints. However, systematic study from arc front to far back arc has rarely shown that the expected geochemical variations of the slab liquid are actually recorded by natural samples. Complexities arise by uncertainties on the nature of the slab component (melts, fluids and supercritical liquids), source heterogeneities and transport processes. Using data from olivine-hosted melt inclusions sampled along and across the NE Japan and southern Kurile arcs, we demonstrate that experimentally and thermodynamically constrained phase stabilities in subducted materials indeed control the trace element signatures as predicted by these models and experiments. The main reactions that can be traced across arc are progressive breakdown of light rare earth element-rich accessory phases (e.g. allanite), enhanced dehydration of the lithospheric mantle (serpentine breakdown) and changes in the nature of the slab component. This work elucidates subduction zone elemental cycling in a well-characterized petrogenetic setting and provides important constraints on the interpretation of trace element ratios in arc magmas in terms of the prograde metamorphic reactions within the subducting slab.

Publisher

Oxford University Press (OUP)

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