Mercury speciation, transformation, and transportation in soils, atmospheric flux, and implications for risk management: A critical review
Видообразование, трансформация и перенос ртути в почвах, атмосферный поток и последствия для управления рисками: критический обзор
2019-03-15
SCID: 54.1/42pbns22
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gaseous elemental mercury fluxmercury methylationmercury speciationrisk managementsoil mercury transport
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Abstract (AI)
Mercury (Hg) is a potentially harmful trace element in the environment and one of the World Health Organization's foremost chemicals of concern. The threat posed by Hg contaminated soils to humans is pervasive, with an estimated 86 Gg of anthropogenic Hg pollution accumulated in surface soils worldwide. This review critically examines both recent advances and remaining knowledge gaps with respect to cycling of mercury in the soil environment, to aid the assessment and management of risks caused by Hg contamination. Included in this review are factors affecting Hg release from soil to the atmosphere, including how rainfall events drive gaseous elemental mercury (GEM) flux from soils of low Hg content, and how ambient conditions such as atmospheric O 3 concentration play a significant role. Mercury contaminated soils constitute complex systems where many interdependent factors, including the amount and composition of soil organic matter and clays, oxidized minerals (e.g. Fe oxides), reduced elements (e.g. S 2− ), as well as soil pH and redox conditions affect Hg forms and transformation. Speciation influences the extent and rate of Hg subsurface transportation, which has often been assumed insignificant. Nano-sized Hg particles as well as soluble Hg complexes play important roles in soil Hg mobility, availability, and methylation. Finally, implications for human health and suggested research directions are put forward, where there is significant potential to improve remedial actions by accounting for Hg speciation and transportation factors.
Key Findings
1
Approximately 86 Gg of anthropogenic mercury pollution has accumulated in surface soils worldwide, creating pervasive human-health risks.
2
Mercury speciation and transformation are governed by interconnected soil factors, including organic matter, clays, iron oxides, sulfide, pH, and redox conditions.
3
Mercury subsurface transport is not necessarily insignificant; nanoscale mercury particles and soluble mercury complexes contribute substantially to mobility, availability, and methylation.
4
Rainfall can drive gaseous elemental mercury flux from low-mercury soils, while ambient ozone concentration significantly affects atmospheric mercury release.
5
Risk assessment and remediation could be improved by explicitly accounting for mercury speciation and transport processes in contaminated soils.
Research Object
Mercury-contaminated soils and their soil–atmosphere mercury cycling
Research Subject
Mercury speciation, transformation, mobility and atmospheric flux, including the environmental factors governing these processes and their implications for risk management
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2019-03-15
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