Research Is Supported by $873K Grant from the National Science Foundation
03/27/2019
By Edwin L. Aguirre
The National Science Foundation (NSF) has awarded a three-year, $873,000 grant to a research project led by Prof. Daniel Obrist, chairman of the Department of Earth, Environmental and Atmospheric Sciences, to study mercury pollution in forests.
gets deposited in forests through rainfall and vegetation uptake 鈥 that is, plants absorb the gaseous form of elemental mercury from the atmosphere and subsequently transfer it to the soil when the plants die or shed leaves. The goal of Obrist and his collaborator, Asst. Prof. Roisin Commane of Columbia University, is to better understand this deposition process, which Obrist describes as 鈥渧egetation pump,鈥 and to take direct measurements of the mercury uptake at two sites 鈥 Harvard University鈥檚 forest near Petersham, Mass., and the Texas A&M Soltis Center forest near San Isidro de Pe帽as Blancas in central Costa Rica.
鈥淪cientists now understand that this vegetation pump dominates as the source of mercury on land, accounting for 54 percent to 94 percent of mercury deposits in soils,鈥 says Obrist. 鈥淏ut no direct measurements of this process are available from forests, which constitute the most abundant ecosystems globally.鈥
According to Obrist, forest measurements are currently limited to polluted sites or short periods of time. 鈥淥ur goal is to directly measure the uptake of atmospheric mercury at the two sites for one full year each, providing the first such records in forests,鈥 he says.
鈥淗uman exposure to mercury is primarily driven by the consumption of fish containing high levels of methylmercury,鈥 notes Obrist.
, which is very poisonous, forms when anaerobic bacteria add a carbon atom to mercury in the water, sediments and soils. It tends to bio-accumulate in the food web, ending up in fish and eventually contaminating wildlife and humans.
Exposure to high levels of methylmercury over long periods can have adverse effects on the body鈥檚 reproductive, immune, cardiovascular and neurological systems. Infants and young children can suffer from developmental disorders, reduced memory performance and increased risk of attention problems.
鈥淭he dataset we will obtain from this project will be used to better understand how mercury moves through trees, soil and the atmosphere,鈥 says Obrist. 鈥淭he knowledge gained will be useful for assessing the global distribution of mercury so that can be achieved.鈥
Mercury Hot Spots
Obrist says the densely forested regions of the northeastern United States are known hot spots of mercury deposition. 鈥淭he tropics also show very high mercury deposition, probably because the regions鈥 vegetation pump remains active all year long. But nobody is measuring them directly 鈥 that is, until now,鈥 he says.
The NSF project will study two contrasting ecosystems. The Harvard forest is an example of a temperate deciduous forest, where broadleaf trees like read oak and red maple shed their leaves every year, while the Soltis Center forest represents an evergreen subtropical rainforest, where many evergreen species like mulberry and mallows retain their leaves throughout the year.
鈥淲e will measure how the forests鈥 mercury deposition changes over seasons and across different forest types,鈥 says Obrist. 鈥淎dditional measurements of trace gases, including carbon dioxide, ozone, water vapor and carbonyl sulfide, will allow us to assess the mechanisms of mercury uptake by plants and underlying soils.鈥
Obrist is an expert in atmospheric cycling and biogeochemistry of mercury, and he has been studying this environmental hazard for over a decade.
For two years, beginning in fall 2014, Obrist led an international group to conduct the most comprehensive study to find the source of mercury pollution in the Arctic. The team鈥檚 findings, which were published in the journal Nature, showed that the absorption of mercury from the atmosphere by the tundra is shown to drive high loads of mercury in Arctic tundra soils. Mercury runoff from tundra soil then supplies 65 to 85 tons of the toxic heavy metal to Arctic lakes, rivers and the Arctic Ocean each year.
鈥淭his mercury from the tundra soil explains half to two-thirds of the total mercury input to the Arctic Ocean,鈥 says Obrist. 鈥淣ow, we鈥檙e going to find out how forests contribute to mercury inputs in watersheds in our latitudes.鈥