Background <p>With the increase in the inorganic carbon input from watersheds, elevated dissolved inorganic carbon (DIC) concentrations will significantly impact the carbon cycle in freshwater ecosystems. Moreover, the limited diffusion rate of CO<sub>2</sub> in water, coupled with the lack of functional stomata, greatly restricts the ability of submerged macrophytes to absorb CO<sub>2</sub> from their aquatic environment. The importance of bicarbonate (HCO<sub>3</sub><sup>−</sup>) for submerged macrophytes becomes more pronounced. Current research focuses on the effects of DIC (notably HCO<sub>3</sub><sup>−</sup>) on the phenotypic plasticity of submerged macrophytes, while its impact on their carbon stock capabilities has rarely been reported.</p> Results <p>In this study, <i>Myriophyllum spicatum</i> served as the model macrophyte within a mesocosm experimental system to assess the impact of HCO<sub>3</sub><sup>−</sup> enrichment (0.5 to 2.5&#xa0;mmol L<sup>−1</sup>) on carbon stocks and emissions across a one-year period. Our findings indicated that the addition of HCO<sub>3</sub><sup>−</sup> had a non-significant inhibitory effect on the diffusive fluxes of methane (CH<sub>4</sub>) emissions. Concurrently, it significantly reduced CO<sub>2</sub> fluxes within the systems. The annual average CO<sub>2</sub> fluxes across the four HCO<sub>3</sub><sup>−</sup> addition levels were -3.48 ± 7.60, -6.78 ± 5.87, -7.15 ± 8.68, and -14.04 ± 14.39&#xa0;mol&#xa0;m<sup>−2</sup>&#xa0;yr<sup>−1</sup>, respectively, showing significant differences between low /medium- and high- HCO<sub>3</sub><sup>−</sup> addition levels.</p> Conclusion <p>The addition of HCO<sub>3</sub><sup>−</sup> enhanced carbon stocks in water, macrophytes and the entire system, with minimal effects on carbon sedimentation stocks. Our study provides valuable insights into understanding the carbon sink capacity of aquatic ecosystems and elucidates the underlying mechanisms driving these processes on a system scale.</p>

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Dissolved inorganic carbon input significantly lowers carbon dioxide flux but not methane flux in shallow macrophyte-dominated systems with positive effects on carbon stocks

  • Fei Diao,
  • Ailifeire Anwaier,
  • Wenjuan Qiu,
  • Tian Qian,
  • Baohua Guan,
  • Yaling Su,
  • Kuanyi Li

摘要

Background

With the increase in the inorganic carbon input from watersheds, elevated dissolved inorganic carbon (DIC) concentrations will significantly impact the carbon cycle in freshwater ecosystems. Moreover, the limited diffusion rate of CO2 in water, coupled with the lack of functional stomata, greatly restricts the ability of submerged macrophytes to absorb CO2 from their aquatic environment. The importance of bicarbonate (HCO3) for submerged macrophytes becomes more pronounced. Current research focuses on the effects of DIC (notably HCO3) on the phenotypic plasticity of submerged macrophytes, while its impact on their carbon stock capabilities has rarely been reported.

Results

In this study, Myriophyllum spicatum served as the model macrophyte within a mesocosm experimental system to assess the impact of HCO3 enrichment (0.5 to 2.5 mmol L−1) on carbon stocks and emissions across a one-year period. Our findings indicated that the addition of HCO3 had a non-significant inhibitory effect on the diffusive fluxes of methane (CH4) emissions. Concurrently, it significantly reduced CO2 fluxes within the systems. The annual average CO2 fluxes across the four HCO3 addition levels were -3.48 ± 7.60, -6.78 ± 5.87, -7.15 ± 8.68, and -14.04 ± 14.39 mol m−2 yr−1, respectively, showing significant differences between low /medium- and high- HCO3 addition levels.

Conclusion

The addition of HCO3 enhanced carbon stocks in water, macrophytes and the entire system, with minimal effects on carbon sedimentation stocks. Our study provides valuable insights into understanding the carbon sink capacity of aquatic ecosystems and elucidates the underlying mechanisms driving these processes on a system scale.