Abstract
AbstractPlagioclase hosted needle- and lath-shaped magnetite micro-inclusions from oceanic gabbro dredged at the mid-Atlantic ridge at 13° 01–02′ N, 44° 52′ W were investigated to constrain their formation pathway. Their genesis is discussed in the light of petrography, mineral chemistry, and new data from transmission electron microscopy (TEM). The magnetite micro-inclusions show systematic crystallographic and shape orientation relationships with the plagioclase host. Direct TEM observation and selected area electron diffraction (SAED) confirm that the systematic orientation relations are due to the alignment of important oxygen layers between the magnetite micro-inclusions and the plagioclase host, a hypothesis made earlier based on electron backscatter diffraction data. Precipitation from Fe-bearing plagioclase, which became supersaturated with respect to magnetite due to interaction with a reducing fluid, is inferred to be the most likely formation pathway. This process probably occurred without the supply of Fe from an external source but required the out-diffusion of oxygen from the plagioclase to facilitate partial reduction of the ferric iron originally contained in the plagioclase. The magnetite micro-inclusions contain oriented lamellae of ilmenite, the abundance, shape and size of which indicate high-temperature exsolution from Ti-rich magnetite constraining the precipitation of the magnetite micro-inclusions to temperatures in excess of ~ 600 °C. This is above the Curie temperature of magnetite, and the magnetic signature of the magnetite-bearing plagioclase grains must, therefore, be considered as the thermoremanent magnetization.
Funder
austrian science fund
российский фонд фундаментальных исследований
javna agencija za raziskovalno dejavnost rs
University of Vienna
Publisher
Springer Science and Business Media LLC
Subject
Geochemistry and Petrology,Geophysics
Reference66 articles.
1. Ageeva O, Habler G, Topa D, Waitz T, Li C, Pertsev A, Griffiths T, Zhilicheva O, Abart R (2016) Plagioclase hosted Fe-Ti-oxide micro-inclusions in an oceanic gabbro-plagiogranite association from the Mid Atlantic ridge at 13 34’ N. Am J Sci 316(2):85–109. https://doi.org/10.2475/02.2016.01
2. Ageeva O, Habler G, Pertsev A, Abart R (2017) Fe-Ti oxide micro-inclusions in clinopyroxene of oceanic gabbro: phase content, orientation relations and petrogenetic implication. Lithos 290–291:104–115. https://doi.org/10.1016/j.lithos.2017.08.007
3. Ageeva O, Bian G, Habler G, Pertsev A, Abart R (2020) Crystallographic and shape orientations of magnetite micro-inclusions in plagioclase. Contrib Miner Petrol 175(10):1–16. https://doi.org/10.1007/s00410-020-01735-8
4. Ariskin AA, Barmina GS (2004) COMAGMAT: development of a magma crystallization model and its petrological applications. Geochem Int 42(1):S1
5. Bell P, Mao H (1973) Measurements of the polarized crystal field spectra of ferrous and ferric iron in seven terrestrial plagioclases. Carnegie Inst Wash Year Book 72:574–576
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