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Integrated rather than organic farming history facilitates soil nitrogen turnover and N2O reduction in a green rye – silage maize cropping sequence

Fawad Khan; Samuel Franco-Luesma; Michael Ulrich Dannenmann; Rainer Gasche; Andreas Gattinger; Frederik Hartmann; Beatrice Tobisch; Ralf Kiese; Benjamin Wolf
Biology and Fertility of Soils · Vol. 61, Issue 1 · pp. 27-41 · 2025

Abstract

Soil gross mineral N production and consumption processes are crucial regulators of plant productivity and N loss from croplands. Substituting synthetic fertilizers by integrating legumes in cultivation systems is common in organic farming, but research on its long-term impact on dynamics of gross soil N transformation and associated environmental N loss is scarce. In particular, studies at a temporal resolution that allows for a mechanistic understanding of long-term effects of organic farming are missing. Therefore, we determined gross N turnover rates of ammonification, nitrification, and ammonium and nitrate immobilization at monthly temporal resolution during a full green rye-maize cropping sequence. Measurements were carried out at sites with same pedo-climatic background but organic farming (OF) and integrated farming (IF) history. During green rye growing, N turnover rates for OF and IF were low and not significantly different, likely owing to low temperatures. During silage maize growing, IF exhibited significantly higher average N turnover rates of 1.86, 4.46, and 5.57 mg N kg⁻ 1 dry soil d⁻ 1 for gross ammonification, ammonium immobilization, and nitrate immobilization, respectively, compared to OF values of 1.11, 1.80, and 2.90 mg N kg⁻ 1 dry soil d⁻ 1 . The significantly higher N turnover rates were likely due to higher soil organic C, N and microbial biomass which result from different long-term management practices. Especially the increased immobilization potential on the IF site contributed to significantly lower area-scaled N₂O emissions (1.45 vs. 4.36 kg N ha⁻ 1 ) during periods of high nitrification. This shows that for low SOC soils, integrated farming history with high C return enhances soil N cycling and reduces the risk of N losses in the form of N 2 O emission.

Bibliographic Information

JournalBiology and Fertility of Soils
PublisherSpringer
Publication Date2025-01-01
Publication Year2025
Volume61
Issue1
Pages27-41
Document TypeJournal Article
Print ISSN0178-2762
eISSN1432-0789
DOI10.1007/s00374-024-01865-2

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NARA Access Coverage1985-01-01~Current
Journal Homepagehttps://www.springer.com/journal/374
Publisher PageOpen Publisher Page
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