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February 9, 2026Journal of Petrology3 citations

Mantle source of the high-Ti magma in the Emeishan large igneous province is oxidized

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ZBZhong‐Jie BaiWZWei-Guang ZhuJGJian-Feng Gao

Key Points

  • The research aims to analyze the redox state of high-Ti picritic magma and its implications for mineralization.
  • Estimated oxygen fugacity (ƒO₂) using olivine-melt vanadium partitioning.
  • Analyzed platinum-group element (PGE) abundances in picritic magmas.
  • Conducted olivine-melt V oxybarometry to assess magmatic oxygen content.
  • Investigated olivine compositions and trace element systematics.
  • Primary magmas produced from ~5% partial melting of peridotite at 3.1-5.1 GPa.
  • High ƒO₂ values (ΔFMQ +1.2 to +1.5) indicating oxidized mantle sources.
  • High PGE concentrations suggest dissolution from mantle sulfides during melting.
  • Sulfide saturation reached during evolution leads to potential for sulfide-poor PGE mineralization.

Abstract

Abstract Oxygen fugacity (ƒO₂) of mantle is a fundamental parameter governing mantle melting, magmatic evolution, and volatile behavior, playing a critical role in material recycling, climate change, and mineralization. This study investigates the redox state of the high-Ti picritic magma in the Emeishan Large Igneous Province (ELIP) by estimating ƒO₂ via the olivine-melt vanadium partition and platinum-group element (PGE) abundances. Olivine compositions and trace element systematics indicate that the primary magmas of high-Ti picrites could be produced through ~5% partial melting from peridotite mantle source at 3.1-5.1 GPa. Olivine-melt V oxybarometry reveals that the primary magmas exhibit relatively high 𝑓𝑂₂ (ΔFMQ +1.2 to +1.5). The high PGE concentrations (16.0-27.5 ng/g) of the picrites imply that the mantle sulfides were readily dissolved during low-degree partial melting, suggesting that they might have originated from relatively oxidized mantle sources. The elevated 𝑓𝑂₂, inherent from the mantle source, might have promoted early crystallization of Fe–Ti oxides, which ultimately drives the formation of giant Fe–Ti–V oxide deposits. The PGE depletion in the high-Ti basaltic magmas suggests that sulfide saturation was reached during magma evolution, implying the potential for sulfide-poor PGE mineralization at depth. However, due to the relatively high sulfur contents at sulfide-liquid saturation (SCSS) of these oxidized high-Ti magmas, large-scale Cu–Ni sulfide deposits could form only where sulfur-rich, reducing sedimentary strata were assimilated. Our study offers new insights into how the ƒO₂ of mantle sources influences the metallogeny of large igneous provinces.

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Cite This Study

Bai et al. (2026) studied this question.

synapsesocial.com/papers/69897a35f0ec2af6756e884dhttps://doi.org/10.1093/petrology/egag012
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