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Controls on Seasonal Atmosphere-Ecosystem Carbon Dioxide Exchanges in a Temperate Salt Marsh
Jesus Ruiz-Plancarte1,2, Jose D Fuentes1, Karen J McGlathery3
1Department of Meteorology and Atmospheric Science, The Pennsylvania State University, University Park, Pennsylvania, USA.
Abstract:
Salt marshes play a vital role in the biogeochemistry of coastal zones, yet the biophysical controls on CO2 exchange with the atmosphere, or net ecosystem exchange (NEE, positive upwards) remain poorly quantified. We investigated a Spartina alterniflora monoculture salt marsh on the eastern shore of Virginia, United States, by estimating half-hourly NEE from March 2016 to February 2017 using the eddy-covariance method. Maximum marsh-atmosphere CO2 exchanges occurred during June and July when hourly averaged NEE values reached -10.0 ± 2.5 μmol CO2 m-2 s-1 (mean ±1 standard deviation). During the most productive time of the year, a tidal inundation of 0.7 m reduced daytime CO2 assimilation and nighttime CO2 release to the atmosphere by 5.0 ± 1.2 μmol CO2 m-2 s-1 and 3.0 ± 0.7 μmol CO2 m-2 s-1, respectively. Diffuse photosynthetically active radiation (PAR) conditions promoted quantum use efficiencies (α) of the ecosystem that were approximately three times greater than under direct PAR conditions (αCloudy = 0.012 ± 0.004 versus αClear = 0.004 ± 0.001 mol CO2 per (mol photons)). Under diffuse light, NEE increased more rapidly with PAR and photo-saturation occurred at higher PAR levels compared to clear-sky conditions. On average, under the influence of diffuse light, the assimilation of CO2 increased by 30% relative to equivalent PAR levels under direct sunlight. During March 2016 to February 2017 the marsh exchanged -269.1 ± 9.1 g of carbon per m2 with the atmosphere. The findings demonstrate that tides and light quality are key regulators of carbon cycling in tidal marshes. These factors should be incorporated into models of tidal marsh biogeochemistry, particularly as both are undergoing rapid changes due to sea level rise and atmospheric warming.
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