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Changes in soil pore structure generated by the root systems of maize, sorghum and switchgrass affect in situ N2O emissions and bacterial denitrification

Maik Lucas; J. Gil; G. P. Robertson; N. E. Ostrom; A. Kravchenko
Biology and Fertility of Soils · Vol. 61, Issue 3 · pp. 367-383 · 2025

Abstract

Due to the heterogeneous nature of soil pore structure, processes such as nitrification and denitrification can occur simultaneously at microscopic levels, making prediction of small-scale nitrous oxide (N 2 O) emissions in the field notoriously difficult. We assessed N 2 O+N 2 emissions from soils under maize ( Zea mays L .) , switchgrass ( Panicum virgatum L.), and energy sorghum ( Sorghum bicolor L.), three potential bioenergy crops in order to identify the importance of different N 2 O sources to microsite production, and relate N 2 O source differences to crop-associated differences in pore structure formation. The combination of isotopic surveys of N 2 O in the field during one growing season and X-ray computed tomography (CT) enabled us to link results from isotopic mappings to soil structural properties. Further, our methodology allowed us to evaluate the potential for in situ N 2 O suppression by biological nitrification inhibition (BNI) in energy sorghum. Our results demonstrated that the fraction of N 2 O originating from bacterial denitrification and reduction of N 2 O to N 2 is largely determined by the volume of particulate organic matter occluded within the soil matrix and the anaerobic soil volume. Bacterial denitrification was greater in switchgrass than in the annual crops, related to changes in pore structure caused by the coarse root system. This led to high N-loses through N 2 emissions in the switchgrass system throughout the season a novel finding given the lack of data in the literature for total denitrification. Isotopic mapping indicated no differences in N 2 O-fluxes or their source processes between maize and energy sorghum that could be associated with the release of BNI by the investigated sorghum variety. The results of this research show how differences in soil pore structures among cropping systems can determine both N 2 O production via denitrification and total denitrification N losses in situ.

Bibliographic Information

JournalBiology and Fertility of Soils
PublisherSpringer
Publication Date2025-04-01
Publication Year2025
Volume61
Issue3
Pages367-383
Document TypeJournal Article
Print ISSN0178-2762
eISSN1432-0789
DOI10.1007/s00374-023-01761-1

Access Information

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