Effect of Ferrous and Ferric Iron on the Viscosity and Structure of Peridotitic Melts: Implication for Viscosity of Basal Magma Ocean in Mars

1Yoshio Kono (>10)

Journal of Geophysical Research: Planets, 131 e2026JE009944 Link to Article [DOI: 10.1029/2026JE009944]
1Department of Physics and Astronomy, Kwansei Gakuin University, Sanda, Japan
Published by arrangement with John Wiley & Sons

Oxidation state of magma ocean is one of the most important factors, which influence its nature and dynamics. Since iron is the most abundant redox-sensitive element, understanding the effect of ferrous (Fe2+) and ferric (Fe3+) iron on the physical properties and structure of peridotite melts are fundamental to discuss geophysical and geochemical evolutions of magma ocean. In this study, we investigate the viscosity of Fe3+-bearing peridotitic melts under Ar gas environment by utilizing an electrostatic levitation furnace at the International Space Station. The results show strong increase of the viscosity of the Fe3+-bearing peridotitic melts with increasing iron content, which is in contrast to previous reports of lower viscosities of iron-abundant peridotitic melts than iron-poor peridotitic melts under reduced environment. Our structural investigations show that Fe3+ causes polymerization of melt structure with increasing iron content, while Fe2+-dominant peridotitic melts under reduced environment show almost no change in the melt structure. These results indicate that polymerization of melt structure by Fe3+ strongly increases the viscosity of peridotitic melt, while simple replacement of Mg2+ with Fe2+ decreases the viscosity of peridotitic melt. Since deep magma ocean is considered to be enriched in Fe3+, due to disproportionation reaction to form metallic iron and Fe3+ at high pressures, strong increase of the viscosity of peridotitic melt by the formation of Fe3+ would be important to discuss nature and dynamics of magmas at deep planetary interiors, such as formation and stability of the basal magma ocean at the core-mantle boundary in Mars.

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