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Mercury sequestration in forests and peatlands: a review
1Department of Soil, Water, and Climate, 439 Borlaug Hall, 1991 Upper Buford Circle, Univ. of Minnesota, St. Paul, MN 55108, USA. dgrigal@soils.umn.edu
Journal of Environmental Quality
|April 24, 2003
Summary
Mercury in terrestrial ecosystems is primarily atmospheric. Wetlands and peatlands are significant mercury sinks, storing more mercury than forests and soils, influenced by organic matter content.
Area of Science:
- Environmental Chemistry
- Biogeochemistry
- Ecosystem Science
Background:
- Atmospheric mercury (Hg) is the primary source for vegetation.
- Mercury distribution in terrestrial ecosystems is strongly linked to organic matter and sulfur content.
- Wetlands and peatlands exhibit higher mercury sequestration than uplands and mineral soils.
Purpose of the Study:
- To investigate the distribution and sequestration of mercury in forest and wetland ecosystems.
- To understand the relationship between mercury, organic matter, and sulfur in terrestrial systems.
- To assess the role of landscape conditions and climate change in mercury cycling.
Main Methods:
- Quantification of mercury mass in vegetation, forest floor, mineral soil, and peat.
- Analysis of mercury-organic matter and mercury-sulfur relationships.
- Comparison of mercury pools with annual anthropogenic emissions.
Main Results:
- Forest vegetation contains significantly less mercury (0.1 mg m(-2)) than forest floor (1 mg m(-2)) and mineral soil (10 mg m(-2)).
- Peatlands sequester substantial mercury (20 mg m(-2)), exceeding combined mineral soil and forest floor pools.
- Methylmercury (MeHg) constitutes a small fraction (<1.5%) of total mercury, but is produced in poorly drained soils and wetlands.
Conclusions:
- Mercury accumulation in terrestrial ecosystems is predominantly controlled by organic matter content and landscape characteristics.
- Peatlands act as critical mercury sinks, sequestering mercury far exceeding annual anthropogenic emissions.
- Climate change impacts on carbon storage will indirectly influence mercury sequestration and the global mercury cycle.