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April 5, 2026Environmental Science & Technology0 citations

Fate of Organic Carbon Shaped by Iron Minerals in Coastal Wetlands: Mechanisms and Implications

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YSYanran ShaoSSShanshan SunSDShaoxuan Ding

Key Points

  • To explore the mechanisms by which iron minerals affect the fate and stability of organic carbon in coastal wetlands.
  • Conducted a systematic review of literature on iron-mediated organic carbon dynamics.
  • Analyzed interactions influenced by salinity fluctuations, tidal hydrodynamics, and vegetation.
  • Synthesized microscale mechanisms of interactions between iron minerals and organic carbon.
  • Highlighted multiple pathways for organic carbon stabilization through interactions with iron minerals.
  • Discussed the impact of redox transitions, including iron reduction and reactive oxygen species production, on organic carbon.
  • Proposed a multifactor coupling framework for predicting carbon sink functionality in coastal wetlands.

Abstract

Coastal wetlands are premier blue carbon sinks, yet the stability and fate of their organic carbon (OC) are profoundly shaped by complex biogeochemical interactions with iron minerals. This review provided a systematic analysis of iron-mediated OC dynamics by resolving the "coastal syndrome"─the synergistic regulation of Fe-OC interactions by salinity fluctuations, tidal hydrodynamics, and halophytic vegetation. We elucidated how iron minerals govern OC fate through multipathway stabilization (adsorption, coprecipitation, and aggregation) and simultaneous mineralization driven by redox transitions, including Fe(III) reduction and Fe(II)-catalyzed reactive oxygen species (ROS) production. Crucially, we emphasize the active role of OC as a redox mediator─acting as electron shuttles and complexing agents─that regulates iron transformation and bioavailability. Also, we synthesized microscale mechanisms and responses to environmental drivers, emphasizing dynamic regulation of interactions between iron minerals and OC by salinity fluctuations, tidal hydrodynamics, vegetation rhizospheres, and their joint effects. Integrating these mechanistic insights, we proposed a transition toward a unified, multifactor coupling framework to better predict and manage the carbon sink functionality of coastal wetlands. This review offered a mechanistic basis for linking saltwater intrusion, iron redox dynamics, and microbial metabolism to carbon sequestration in coastal blue carbon ecosystems.

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Cite This Study

Shao et al. (2026) studied this question.

synapsesocial.com/papers/69d1fc4fa79560c99a0a1eb1https://doi.org/10.1021/acs.est.5c15439
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