Unlocking soil nitrous oxide sink through labile carbon
2026-08-28
Nitrous oxide (N 2 O), a potent greenhouse gas and the dominant ozone-depleting substance, is primarily emitted from soils. Understanding atmosphere-to-soil N 2 O uptake is crucial for harnessing the soil’s natural sink potential, yet its quantification and mechanistic drivers remain poorly constrained. Here, we disentangled gross N 2 O emission and uptake using the 15 N 2 O pool dilution method, revealing key drivers in five cropland soils across China and in labile carbon–amended soils. In particular, the ratio of gross N 2 O uptake to emission—driven by the soil labile carbon to inorganic nitrogen [dissolved organic carbon/dissolved inorganic nitrogen (DOC/DIN)] ratio—showed pronounced variability (0.28 to 0.79), revealing a powerful but previously underestimated lever for regulating net N 2 O fluxes. Mechanistically, an elevated DOC/DIN ratio promoted complete denitrification by increasing electron supply, stimulating oxygen-depleting respiration, and enhancing nosZ gene abundance, achieving up to 51% N 2 O mitigation. Our findings underscore soils as dynamic N 2 O regulators and propose a carbon-nitrogen–coupled regulation framework, where labile carbon plays a critical role in regulating N 2 O dynamics.