On-line analysis of N 2 O isotopic composition during biological nitrogen removal in wastewater treatment to disentangle production and reduction processes

Nitrous oxide (N 2 O) is a potent greenhouse gas, and emissions from wastewater treatment plants (WWTPs) represent a significant and highly variable source. Understanding the dynamics in microbial pathways of N 2 O formation and reduction during biological nitrogen removal is essential for targeted mitigation strategies. Stable isotope analysis of N 2 O ( δ 15 N α , δ 15 N β , δ 18 O, and 15 N site preference) provides a powerful tool to disentangle and quantify N 2 O production and reduction processes, yet conventional analytical approaches lack temporal resolution. Here, we present the first long-term application of an off-axis integrated cavity output spectrometer for real-time N 2 O isotopic analysis at a pilot-scale WWTP over one year of operation. We developed a dynamic dilution system and implemented correction protocols for drift, N 2 O mole fraction dependence, and gas matrix effects on isotopic results, achieving uncertainties of 0.8 ‰ ( δ 15 N α ), 1.1 ‰ ( δ 15 N β ), 0.8 ‰ ( δ 15 N bulk ), 0.5 ‰ ( δ 18 O) and 1.1 ‰ ( 15 N site preference). Representative datasets demonstrate the system's capability to (i) identify dominant N 2 O production pathways under standard WWTP operation, (ii) quantify N 2 O reduction in relation to dissolved oxygen concentration, and (iii) trace nitrogen transformation during low-level 15 N-labelling experiments. Our results indicate nitrifier or heterotrophic denitrification as the main source of N 2 O, and that N 2 O reduction efficiency is strongly controlled by oxygen availability. This study highlights the potential of laser spectroscopy for continuous isotopic monitoring in real-world engineered systems and provides practical guidelines for uncertainty reduction and data interpretation. More specifically, our work forms a foundation for further investigations of the operational factors controlling N 2 O formation and N 2 O reduction in biological WWTPs and other complex anthropogenically-perturbed settings.

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Publication Details

Journal
Atmospheric measurement techniques
Published
2026-10-05
DOI
https://doi.org/10.5194/amt-19-6311-2026
Primary Topic
Wastewater Treatment and Nitrogen Removal
Type
article
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article

On-line analysis of N 2 O isotopic composition during biological nitrogen removal in wastewater treatment to disentangle production and reduction processes

Adriano Joss, André Kupferschmid, Andreas Froemelt, Paul Magyar et al.
Atmospheric measurement techniques
Wastewater Treatment and Nitrogen Removal
article

On-line analysis of N 2 O isotopic composition during biological nitrogen removal in wastewater treatment to disentangle production and reduction processes

Adriano Joss, André Kupferschmid, Andreas Froemelt, Paul Magyar, Joachim Mohn, Laurence Strubbe, Hannes Keck, Klaus‐Holger Knorr
article en

Abstract

Nitrous oxide (N 2 O) is a potent greenhouse gas, and emissions from wastewater treatment plants (WWTPs) represent a significant and highly variable source. Understanding the dynamics in microbial pathways of N 2 O formation and reduction during biological nitrogen removal is essential for targeted mitigation strategies. Stable isotope analysis of N 2 O ( δ 15 N α , δ 15 N β , δ 18 O, and 15 N site preference) provides a powerful tool to disentangle and quantify N 2 O production and reduction processes, yet conventional analytical approaches lack temporal resolution. Here, we present the first long-term application of an off-axis integrated cavity output spectrometer for real-time N 2 O isotopic analysis at a pilot-scale WWTP over one year of operation. We developed a dynamic dilution system and implemented correction protocols for drift, N 2 O mole fraction dependence, and gas matrix effects on isotopic results, achieving uncertainties of 0.8 ‰ ( δ 15 N α ), 1.1 ‰ ( δ 15 N β ), 0.8 ‰ ( δ 15 N bulk ), 0.5 ‰ ( δ 18 O) and 1.1 ‰ ( 15 N site preference). Representative datasets demonstrate the system's capability to (i) identify dominant N 2 O production pathways under standard WWTP operation, (ii) quantify N 2 O reduction in relation to dissolved oxygen concentration, and (iii) trace nitrogen transformation during low-level 15 N-labelling experiments. Our results indicate nitrifier or heterotrophic denitrification as the main source of N 2 O, and that N 2 O reduction efficiency is strongly controlled by oxygen availability. This study highlights the potential of laser spectroscopy for continuous isotopic monitoring in real-world engineered systems and provides practical guidelines for uncertainty reduction and data interpretation. More specifically, our work forms a foundation for further investigations of the operational factors controlling N 2 O formation and N 2 O reduction in biological WWTPs and other complex anthropogenically-perturbed settings.

Atmospheric measurement techniquesVol. 19(19)
Institute of Landscape Ecology of the Slovak Academy of Sciences (SK), Swiss Federal Institute of Aquatic Science and Technology (CH), Flemish Institute for Technological Research (BE), Swiss Federal Laboratories for Materials Science and Technology (CH)
Openalex Percentile: Top 23%
Wastewater Treatment and Nitrogen Removal
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