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Updated: Sep 18, 2025

Estimating Sediment Denitrification Rates Using Cores and N2O Microsensors
Published on: December 6, 2018
Contribution of denitrification and ammonia oxidation to nitrous oxide emissions from three organic soilless
Bruno J L Pitton1, Lorence R Oki2, Richard Y Evans2
1Department of Plant Sciences, University of California, Davis, One Shields Ave., Davis, CA 95616, USA; Agriculture and Natural Resources, University of California, 11477 E Ave., Auburn, CA 95603, USA.
Abstract:
Nitrous oxide (N2O) emissions from soilless growing substrates are significantly greater per production area than crops grown in mineral soil. To understand and identify the N2O production pathways in soilless substrates, fir bark, peat, and peat:fir bark substrates were treated with labeled 15N fertilizers. The volumetric water content (VWC) of the soilless substrate was maintained near container capacity, and gas samples were collected every other day for 21 days and analyzed for 15N-N2O content. Fir bark and peat:fir bark substrates had significantly greater total N2O emissions than peat substrate when fertilized with NH4NO3. Denitrification was the main pathway of N2O emissions from all substrates and it was more pronounced in the fir bark and peat:fir bark substrates. In the peat substrate, the contribution of ammonia oxidation to N2O emissions started on day 11 and continued to increase until the end of the experiment, contributing to 6 % of the total N2O emitted from this substrate. Overall, reducing denitrification-derived emissions from soilless substrates is critical to mitigate the impact of container-plant production on global warming. Future research should focus on developing strategies to reduce these emissions.
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