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dc.contributor.authorSchleusner, Philipp
dc.date.accessioned2018-05-09T14:20:55Z
dc.date.available2018-05-09T14:20:55Z
dc.date.issued2018-05-09
dc.identifier.isbn978-91-7833-053-9
dc.identifier.urihttp://hdl.handle.net/2077/56067
dc.description.abstractNitrous oxide (N2O) is a long-lasting and potent greenhouse gas responsible for depletion of stratospheric ozone. As the atmospheric N2O concentration reaches all-time highs, emission variability in space and time still leaves unresolved questions. The aim of this thesis is to improve our understanding of the origin of N2O and its main drivers from the largest anthropogenic source: agricultural soil. Therefore, we investigated agricultural soil from long-term trial field sites in the laboratory and used 15N-enriched tracers in two main approaches: partitioning of the sources of N2O production and quantification of the gross rates of microbial processes competing for ammonium (NH4+) and nitrate (NO3-). The varying relative contribution of NH4+, NO3- and organic nitrogen (Norg) to N2O emission highlights the influence of site-specific factors apart from the field management. Without fertilizer, Norg was the dominant N2O source related to high carbon (C) contents and C:N ratios. High N2O emissions were caused by increasing contributions of nitrification and denitrification, which was drastically stimulated by mineral nitrogen (N) fertilizer. In addition, N fertilizer application more than doubled N2O production from native non-fertilizer N compounds, which provides evidence for primed N2O production. By using the Ntrace model, we quantified gross rates of N cycle processes that compete for substrates and regulate N2O production. In the long term, cropping systems can shift the balance between denitrification and dissimilatory nitrate reduction to ammonium (DNRA), which determines the fate of NO3- in soil. A perennial cropping system that maintains high SOM contents and C/NO3- ratios has shaped the microbial community of dissimilatory nitrate reducers leading to higher N retention by DNRA and lower N2O emissions. By applying selective inhibitors, we were able to quantify the specific activity of archaeal and bacterial nitrifiers competing for NH4+. While both can coexist and be equally active in agricultural soil with low N supply, bacteria outcompeted archaea with increasing NH4+ concentration, which can be responsible for higher N2O emissions as well. This thesis illustrates how human action drives N2O emission from agricultural soil in a variety of ways since field management affects N cycle processes in the short- and long-term. While N fertilizer application strongly stimulates N2O production from added- and native N sources, long-term field management can change the soil properties, which shifts the abundance of microbial communities and thereby alters the N cycle processes responsible for N2O production.sv
dc.language.isoengsv
dc.relation.haspartSchleusner P., Rütting T. Partitioning of nitrous oxide production pathways in agricultural soils. Under review in Geoderma.sv
dc.relation.haspartPutz M.*, Schleusner P.*, Rütting T., Hallin S. Relative abundance of denitrifying and DNRA bacteria and their activity determine nitrogen retention or loss in agricultural soil (*equal contribution). Accepted for publication in Soil Biology and Biochemistry.sv
dc.relation.haspartSchleusner P., Lammirato C., Tierling J., Lebender U., Rütting T. Primed N2O emission from native soil nitrogen: a 15N-tracing laboratory experiment. Accepted with minor revision in Journal of Plant Nutrition and Soil Science.sv
dc.relation.haspartSchleusner P., Rütting T. Substrate availability determines relative contribution of archaea and bacteria for gross ammonia oxidation. Manuscript.sv
dc.subjectNitrogensv
dc.subjectField managementsv
dc.subjectFertilizersv
dc.subject15N-tracingsv
dc.subjectAmmoniumsv
dc.subjectNitratesv
dc.subjectSoil organic mattersv
dc.subjectPrimingsv
dc.subjectDenitrificationsv
dc.subjectNitrate ammonificationsv
dc.subjectDNRAsv
dc.subjectAmmonia oxidationsv
dc.subjectBacteria,sv
dc.subjectArchaeasv
dc.titleNitrous Oxide Production in Agricultural Soil – Linking Biogeochemical Pathways and Driverssv
dc.typeText
dc.type.svepDoctoral thesiseng
dc.gup.mailphilipp.schleusner@gmail.comsv
dc.type.degreeDoctor of Philosophysv
dc.gup.originGöteborgs universitet. Naturvetenskapliga fakultetensv
dc.gup.departmentDepartment of Earth Sciences ; Institutionen för geovetenskapersv
dc.gup.defenceplaceFredagen den 1 juni 2018, kl. 10 i Hörsalen, institutionen för geovetenskaper, Guldhedsgatan 5C, Göteborgsv
dc.gup.defencedate2018-06-01
dc.gup.dissdb-fakultetMNF


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