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Mantle Source of the High-Ti Magma in the Emeishan Large Igneous Province Is Oxidized

地质学 地球化学 地幔(地质学) 火成岩大省 橄榄岩 火成岩 玄武岩 橄榄石 泛滥玄武岩 部分熔融 矿物氧化还原缓冲液 地幔柱 岩石学 铬铁矿 分步结晶(地质学) 逸度 微量元素 过渡带 镁铁质 硅质 硫化物 金伯利岩 地幔楔 辉长岩 不相容元素 热点(地质) 地壳再循环 火成岩分异
作者
Zhong‐Jie Bai,Wei-Guang Zhu,Jian-Feng Gao,Gang Wang,Shi-Ji Zheng
出处
期刊:Journal of Petrology [Oxford University Press]
卷期号:67 (2)
标识
DOI:10.1093/petrology/egag012
摘要

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 ƒO₂ (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 ƒO₂, 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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