环境科学
农业
温室气体
肥料
气候变化
土壤水分
气候政策
土壤碳
一氧化二氮
减缓气候变化
氮气
环境保护
还原(数学)
全球变暖
固碳
农业生产力
自然资源经济学
大气科学
情景分析
氮气循环
粮食安全
农学
环境工程
农业工程
热点(地质)
生态区
环境政策
时间轴
作者
Chaoqun Lu,Linchao Li,Wilfried Winiwarter,Josep G. Canadell,Weihang Liu,Hanqin Tian
摘要
ABSTRACT Agricultural soils are the largest human‐induced source of nitrous oxide (N 2 O) due to the extensive fertilizer use in crop production. Despite progress made in global N 2 O budget accounting, using the IPCC‐derived static emission factors (EF) limits our capability to project future changes in agricultural N 2 O emissions and identify cost‐effective mitigation strategies. Here, we use a physics‐informed AI‐driven dynamic EF modeling framework to project direct agricultural soil N 2 O emissions induced by mineral fertilizer additions under various climate and nitrogen (N) regulation policy scenarios. Compared to projections based on static EF, our study yields higher future N 2 O emissions by 0.3–1.1 Tg N year −1 across scenarios by 2050, implying greater abatement needs to combat climate change. The gap between static and dynamic EF approaches is projected to widen to 29%–34% by mid‐century. Under moderate‐ to high‐ambition N regulation policies, we project that a 25% emission reduction can be reached before 2050, while a 45% reduction is only attainable under high‐ambition N policies and strong climate action. The potential for N 2 O mitigation due to a policy shift varies substantially among regions, with seven top source regions contributing 76%–87% of global N 2 O reduction. Adopting N 2 O reduction technologies in hotspot areas would significantly accelerate the timeline for achieving the 25% reduction goal. Improving fertilizer management on croplands can provide climate benefits comparable to, or even exceeding, those of enhancing soil carbon sequestration, particularly in regions with low nitrogen use efficiency. Our findings highlight the higher mitigation potential of targeting N 2 O emission hotpots and the urgency of implementing policy shifts.
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