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May 15, 2026Biogeochemistry0 citationsOpen Access

Water table rise sustains carbon release from soils in wetland-dominated landscapes: an intact soil core study

KWKatherine WardinskiCLCarla López LloredaNCNicholas Corline

Key Points

  • This study aims to quantify the effects of groundwater rise on dissolved organic matter and greenhouse gas fluxes in wetland soils.
  • Laboratory simulations of vertical groundwater rise on intact soil cores from four Delmarva bay wetlands
  • Cores saturated with groundwater for 15 days followed by 25 days of full saturation
  • Analysis of porewater and surface water samples for DOM concentration and other metrics.
  • Porewater DOM concentrations increased and remained elevated during prolonged saturation.
  • CO2 fluxes decreased with longer saturation, while CH4 fluxes shifted from sinks to sources upon full saturation.
  • Findings indicate groundwater rise facilitates carbon mobilization in wetland-dominated landscapes, with implications for carbon cycling under climate change.

Abstract

Abstract Wetland-dominated landscapes influence carbon cycling through their potential to act as both carbon sinks and sources. Wetlands in low-relief landscapes have dynamic terrestrial-aquatic interfaces that change seasonally with variable surface water and groundwater levels. However, few studies have directly quantified dissolved organic matter (DOM) release and greenhouse gas (CO 2 , CH 4 ) fluxes from wetland soils along terrestrial-aquatic interfaces as they are seasonally re-saturated by groundwater. To estimate groundwater-mediated soil DOM and gas fluxes, we performed laboratory simulations of vertical groundwater rise on intact soil cores collected from four Delmarva bay wetlands located in the Mid-Atlantic United States. At each wetland, one core was collected from within the wetland basin and the other from the transitional zone at the basin edge. Cores were re-saturated with groundwater over 15 days and then kept fully saturated for an additional 25 days. Source groundwater, soil porewater, and exfiltrated surface water samples were collected and analyzed for pH, ORP, DOM concentration, and DOM optical indices. In both the wetland and transition zone cores, porewater DOM concentrations increased over the wet up and were sustained during prolonged saturation. Optical indices shifted from recently produced, microbial-like signatures towards aromatic, terrestrial-like signatures. Fluxes of CO 2 decreased as the duration of soil saturation increased and soil cores switched from CH 4 sinks to sources upon full soil core saturation. Results indicate that groundwater rise sustains carbon mobilization from soils in wetland-dominated landscapes, emphasizing the need to understand how climate-driven changes to groundwater dynamics may affect carbon fluxes along terrestrial-aquatic interfaces.

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Cite This Study

Wardinski et al. (2026) studied this question.

synapsesocial.com/papers/6a06b928e7dec685947abaf2https://doi.org/10.1007/s10533-026-01328-w
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