In situ 15N‐N2O site preference and O2 concentration dynamics disclose the complexity of N2O production processes in agricultural soil

反硝化 微观世界 原位 硝化作用 环境科学 氮气循环 环境化学 自行车 一氧化二氮 化学 氮气 历史 考古 有机化学
作者
Huanhuan Wei,Xiaotong Song,Yan Liu,Rui Wang,Xunhua Zheng,Klaus Butterbach‐Bahl,Rodney T. Venterea,Di Wu,Xiaotang Ju
出处
期刊:Global Change Biology [Wiley]
卷期号:29 (17): 4910-4923 被引量:24
标识
DOI:10.1111/gcb.16753
摘要

Arable soil continues to be the dominant anthropogenic source of nitrous oxide (N2 O) emissions owing to application of nitrogen (N) fertilizers and manures across the world. Using laboratory and in situ studies to elucidate the key factors controlling soil N2 O emissions remains challenging due to the potential importance of multiple complex processes. We examined soil surface N2 O fluxes in an arable soil, combined with in situ high-frequency measurements of soil matrix oxygen (O2 ) and N2 O concentrations, in situ 15 N labeling, and N2 O 15 N site preference (SP). The in situ O2 concentration and further microcosm visualized spatiotemporal distribution of O2 both suggested that O2 dynamics were the proximal determining factor to matrix N2 O concentration and fluxes due to quick O2 depletion after N fertilization. Further SP analysis and in situ 15 N labeling experiment revealed that the main source for N2 O emissions was bacterial denitrification during the hot-wet summer with lower soil O2 concentration, while nitrification or fungal denitrification contributed about 50.0% to total emissions during the cold-dry winter with higher soil O2 concentration. The robust positive correlation between O2 concentration and SP values underpinned that the O2 dynamics were the key factor to differentiate the composite processes of N2 O production in in situ structured soil. Our findings deciphered the complexity of N2 O production processes in real field conditions, and suggest that O2 dynamics rather than stimulation of functional gene abundances play a key role in controlling soil N2 O production processes in undisturbed structure soils. Our results help to develop targeted N2 O mitigation measures and to improve process models for constraining global N2 O budget.
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