HR: 0800h
AN: B11B-0395 [Abstracts]
TI: Diminished Mercury Emission From Water Surfaces by Duckweed (Lemna minor)
AU: * Wollenberg, J L
EM: jlw9@lehigh.edu
AF: Lehigh University, Earth & Environmental Sciences
31 Williams Dr., Bethlehem, PA 18015, United States
AU: Peters, S C
EM: scp2@lehigh.edu
AF: Lehigh University, Earth & Environmental Sciences
31 Williams Dr., Bethlehem, PA 18015, United States
AB:
Aquatic plants of the family Lemnaceae (generally referred to as duckweeds) are a widely distributed type of
floating vegetation in freshwater systems. Under suitable conditions, duckweeds form a dense vegetative mat on
the water surface, which reduces light penetration into the water column and decreases the amount of exposed
water surface. These two factors would be expected to reduce mercury emission by limiting a) direct
photoreduction of Hg(II), b) indirect reduction via coupled DOC photooxidation-Hg(II) reduction, and c) gas
diffusion across the water-air interface. Conversely, previous studies have demonstrated transpiration of Hg(0) by
plants, so it is therefore possible that the floating vegetative mat would enhance emission via transpiration of
mercury vapor. The purpose of this experiment was to determine whether duckweed limits mercury flux to the
atmosphere by shading and the formation of a physical barrier to diffusion, or whether it enhances emission from
aquatic systems via transpiration of Hg(0).
Deionized water was amended with mercury to achieve a final concentration of approximately 35 ng/L and
allowed to equilibrate prior to the experiment. Experiments were conducted in rectangular polystyrene flux
chambers with measured UV-B transmittance greater than 60% (spectral cutoff approximately 290 nm). Light
was able to penetrate the flux chamber from the sides as well as the top throughout the experiment, limiting the
effect of shading by duckweed on the water surface. Flux chambers contained 8L of water with varying percent
duckweed cover, and perforated plastic sheeting was used as an abiotic control. Exposures were conducted
outside on days with little to no cloud cover. Real time mercury flux was measured using atomic absorption
(Mercury Instruments UT-3000). Total solar and ultraviolet radiation, as well as a suite of meteorological
parameters, were also measured. Results indicate that duckweed diminishes mercury emission from the water
surface as compared to open water controls. Decreases in emission rate varied linearly with percent duckweed
cover, with lower fluxes occurring at higher percent cover. Mercury flux in the duckweed treatments as compared to
open water treatments decreased from 17% in the lowest percent cover treatment to 67% in the highest percent
cover treatment. The observed decrease in mercury emission suggests that duckweed limits emission via the
formation of a physical barrier to diffusion.
DE: 0414 Biogeochemical cycles, processes, and modeling (0412, 0793, 1615, 4805, 4912)
DE: 0426 Biosphere/atmosphere interactions (0315)
DE: 0432 Contaminant and organic biogeochemistry (0792)
DE: 0461 Metals
SC: Biogeosciences [B]
MN: 2007 Fall Meeting