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Water Activation on Sulfur Vacancies Enables Pyrite-Mediated Methylmercury Demethylation and Immobilization
Lei Yang1, Shengli Hou1, Ying Guo1
1College of Environmental Science and Engineering, Ministry of Education Key Laboratory of Pollution Processes and Environmental Criteria, Tianjin Key Laboratory of Environmental Remediation and Pollution Control, Nankai University, 38 Tongyan Road, Tianjin300350, China.
Abstract:
The accumulation of neurotoxic methylmercury (MeHg) in rice paddies presents a major global food safety challenge, yet effective in situ remediation strategies for flooded, anoxic soils are lacking. Here, we report that sulfur vacancy (SV)-rich pyrite efficiently degrades MeHg under dark, anoxic conditions via an innovative pathway involving vacancy-activated water (H2O). Experimental and theoretical evidence reveals that SVs serve a dual function: they enhance MeHg adsorption, weakening the carbon-mercury bond, while simultaneously activating ambient H2O to generate surface-bound hydroxyl radicals (•OH) that drive demethylation. The reaction rapidly converts MeHg into inorganic Hg(II), which is subsequently sequestered as insoluble, nanocrystalline metacinnabar (β-HgS) epitaxially anchored to the pyrite surface. Crucially, this β-HgS byproduct demonstrates negligible bioavailability in incubation experiments with Geobacter sulfurreducens PCA, a key mercury-transforming bacterium in paddy soils. This work establishes a "degrade and sequester" mechanism that transforms a mobile neurotoxin into a geochemically stable mineral phase. Our findings provide a sustainable, mineral-based strategy for the in situ remediation of MeHg-contaminated anoxic environments, closing the mercury loop and mitigating its entry into the food chain.
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