Spontaneous combustion of metal sulfide minerals and implications for seafloor massive sulfide mining

Abstract Metal sulfide minerals are abundant phases in many environments on earth, including seafloor massive sulfide (SMS) deposits, which occur at hydrothermal vents throughout the global ocean. These deep-sea settings are currently undergoing exploration for potential future mining. Here, we describe rocks from Escanaba Trough on the southern Gorda Ridge that underwent spontaneous combustion during laboratory processing. We compared the mineralogy, composition, and thermogravimetric behavior of the combusting samples to rocks from the same location that did not combust. We then used thermodynamic analyses to evaluate the exothermic nature of different metal sulfide oxidation reactions. The combusting rocks are primarily composed of nanocrystalline marcasite pseudomorphing blades of primary pyrrhotite. These altered, nanocrystalline rocks are less stable than their primary predecessors. Typically, recrystallization decreases reactivity as minerals trend towards steady state; however, both of the combusting samples we characterized are secondary, and demonstrate the instability of this metastable intermediate phase. Further, thermodynamic calculations indicate that metal sulfide oxidation is more exothermic when oxygen serves as the oxidant, as occurs in seawater or air. The distinct mineralogy, texture, and setting of SMS deposits in the modern oceans thus suggests a greater potential for self-heating in comparison to their ancient analogues.

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Publication Details

Journal
Scientific Reports
Published
2026-09-28
DOI
https://doi.org/10.1038/s41598-026-70438-0
Primary Topic
Geological and Geochemical Analysis
Type
article
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Spontaneous combustion of metal sulfide minerals and implications for seafloor massive sulfide mining

Isobel Yeo, Amy Gartman, Aude Picard, Jaycee Favela et al.
Scientific Reports
Geological and Geochemical Analysis
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Spontaneous combustion of metal sulfide minerals and implications for seafloor massive sulfide mining

Isobel Yeo, Amy Gartman, Aude Picard, Jaycee Favela, Karen Bustillo, Robert Zierenberg, Katlin Adamczyk, I. Maru Shapiro, Kha Phan, John Jamieson, Hope Ianiri
article en

Abstract

Abstract Metal sulfide minerals are abundant phases in many environments on earth, including seafloor massive sulfide (SMS) deposits, which occur at hydrothermal vents throughout the global ocean. These deep-sea settings are currently undergoing exploration for potential future mining. Here, we describe rocks from Escanaba Trough on the southern Gorda Ridge that underwent spontaneous combustion during laboratory processing. We compared the mineralogy, composition, and thermogravimetric behavior of the combusting samples to rocks from the same location that did not combust. We then used thermodynamic analyses to evaluate the exothermic nature of different metal sulfide oxidation reactions. The combusting rocks are primarily composed of nanocrystalline marcasite pseudomorphing blades of primary pyrrhotite. These altered, nanocrystalline rocks are less stable than their primary predecessors. Typically, recrystallization decreases reactivity as minerals trend towards steady state; however, both of the combusting samples we characterized are secondary, and demonstrate the instability of this metastable intermediate phase. Further, thermodynamic calculations indicate that metal sulfide oxidation is more exothermic when oxygen serves as the oxidant, as occurs in seawater or air. The distinct mineralogy, texture, and setting of SMS deposits in the modern oceans thus suggests a greater potential for self-heating in comparison to their ancient analogues.

Scientific Reports
University of Nevada, Las Vegas (US), Lawrence Berkeley National Laboratory (US), University of Ottawa (CA), National Oceanography Centre (GB), Pacific Science Center (US), Molecular Foundry, University of California, Davis (US)
Life below water
Openalex Percentile: Top 14%
Geological and Geochemical Analysis
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