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January 22, 2026Journal of soil science and plant nutrition0 citationsOpen Access

CO2 and N2O Emissions after Digestate Application Responded Differently to Topsoil Dilution and Soil Erosion State

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APAyten PehlivanMHMathias HoffmannMLMatthias Lück

Key Points

  • This study examines how topsoil dilution affects CO2 and N2O emissions after digestate application, focusing on various erosion states.
  • Conducted an incubation experiment simulating topsoil dilution caused by erosion
  • Used three soil types: non-eroded, moderately eroded, and strongly eroded
  • Applied digestate as an organic fertilizer and measured gas emissions for 26 days using an automated system
  • Digestate application increased both CO2 and N2O emissions in all soil types
  • Topsoil dilution reduced CO2 emissions in non-eroded soils and affected emissions in moderately and strongly eroded soils
  • N2O emissions decreased in moderately eroded soils but increased in strongly eroded and slightly in non-eroded soils

Abstract

Abstract The application of digestates supports soil fertility by restoring soil organic matter (SOM) and supplying nitrogen (N). However, their application can increase greenhouse gas (GHG) emissions from agriculture. Targeted digestate application to soils where erosion has mixed subsoil into topsoil may reduce emissions, as the lower SOM saturation in this diluted topsoil could enhance stabilization of organic inputs. This study investigates whether topsoil dilution through erosion can reduce carbon dioxide (CO 2 ) and nitrous oxide (N 2 O) emissions following digestate application. We conducted an incubation experiment simulating erosion-induced topsoil dilution. Three different soils from Uckermark region, Germany—non-eroded (LL), moderately eroded (eLL), and strongly eroded (RZ)—were incubated for 26 days in an automated gas exchange system. Topsoil was diluted with 20% subsoil, and digestate applied as organic fertilizer. CO 2 and N 2 O emissions were measured; undiluted, unfertilized soils served as controls. Digestate increased CO 2 and significantly raised N 2 O emissions in all soils. Topsoil dilution reduced CO 2 emissions in LL and showed similar trends in eLL and RZ, though the effect weakened with erosion severity, likely due to existing C-undersaturation in these soils. N 2 O responses varied: emissions decreased in eLL (high clay and reactive mineral content), possibly due to enhanced N stabilization, but increased in RZ (calcareous, high-pH soil likely promoting nitrification) and slightly in LL, possibly due to lowered carbon-to-nitrogen (C: N) ratio. Topsoil dilution can mitigate digestate-induced CO 2 but may elevate N 2 O emissions depending on soil properties. Therefore, site-specific management is key to lowering GHGs in erosion-prone soils.

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Cite This Study

Pehlivan et al. (2026) studied this question.

synapsesocial.com/papers/6971be50642b1836717e2ed9https://doi.org/10.1007/s42729-025-02940-9
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