Crystal Structure Controls on Oriented Primary Magnetite Micro-Inclusions in Plagioclase From Oceanic Gabbro

Author:

Bian Ge1ORCID,Ageeva Olga12ORCID,Roddatis Vladimir3,Li Chen45,Pennycook Timothy J4,Habler Gerlinde1ORCID,Abart Rainer1

Affiliation:

1. University of Vienna Department of Lithospheric Research, , Josef-Holaubek-Platz 2, 1090 Vienna, Austria

2. Institute of Geology of Ore Deposits, Petrography, Mineralogy, and Geochemistry (IGEM) , Staromonetnyi 35, Moscow 119017, Russia

3. GFZ German Research Centre for Geosciences Helmholtz Centre Potsdam, , Telegrafenberg, D-14473 Potsdam, Germany

4. University of Antwerp Electron Microscopy for Materials Science (EMAT), , Groenenborgerlaan 171, 2020 Antwerp, Belgium

5. Thermo Fisher Scientific New address: , Achtseweg Noord 5, 5651 GG Eindhoven, Netherlands

Abstract

Abstract Oriented needle-, lath- and plate-shaped magnetite micro-inclusions in rock forming plagioclase from mafic intrusive rocks, were investigated using correlated optical microscopy and scanning transmission electron microscopy. The magnetite micro-inclusions were analysed on cuts parallel and perpendicular to the inclusion–elongation directions. The crystal structures of the two phases are in direct contact along the interfaces. The shape, shape orientation and crystallographic orientation relationships between the magnetite micro-inclusions and the plagioclase host appear to be controlled by the tendency of the system to optimise lattice match along the interfaces. The elongation direction of the inclusions ensures good match between prominent oxygen layers in the magnetite and plagioclase crystal structures across the interfaces bounding the inclusions parallel to their elongation direction. In cross-section, additional modes of lattice match, such as the commensurate impingement of magnetite and plagioclase lattice planes along the interfaces, the parallel alignment of the interfaces to low-index lattice planes of magnetite or plagioclase, or the parallel alignment to low index lattice planes of both phases are observed, which appear to control the selection of interface facets, as well as the shape and crystallographic orientation relationships between magnetite micro-inclusions and plagioclase host. The systematics of the inclusion cross-sectional shapes and crystallographic orientation relationships indicate recrystallisation of magnetite with potential implications for natural remanent magnetisation of magnetite-bearing plagioclase grains.

Publisher

Oxford University Press (OUP)

Subject

Geochemistry and Petrology,Geophysics

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