One-third of global lake nitrous oxide emissions are concentrated in the northern temperate zone (40°N–50°N)

Lacustrine nitrous oxide (N 2 O) emissions remain highly uncertain in the global greenhouse gas budget largely because of sparse observations and the omission of small lakes. Here we compile the Global Lake N 2 O database (GLON 2 O), integrating 6550 in situ measurements from 3829 lakes worldwide, and develop a machine learning framework to estimate emissions from lakes ≥0.1 square kilometers. To quantify previously overlooked systems, we construct the Global Small Lakes database (GSLAKES). We estimate that global lakes emit 0.208 teragrams of nitrogen per year of N 2 O, with approximately one-third originating from the northern temperate zone (40° to 50°N). Despite accounting for only 9.6% of total lake area, small lakes (<0.1 square kilometers) contribute 34.6% of global emissions, revealing a pronounced U-shaped relationship between emission intensity and lake size. We further identify hierarchical predictors of lake N 2 O emissions: Natural constraints determine biogeochemical potential, anthropogenic nitrogen inputs amplify emissions, and lake morphometry regulates spatial expression. These findings refine global lake N 2 O inventories and provide an empirical basis for scale-aware mitigation.

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Publication Details

Journal
Science Advances
Published
2026-09-16
DOI
https://doi.org/10.1126/sciadv.aeg1490
Primary Topic
Marine and coastal ecosystems
Type
article
Field-Weighted Citation Impact
0.00

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article

One-third of global lake nitrous oxide emissions are concentrated in the northern temperate zone (40°N–50°N)

Yang Gao, Yue Qin, Zhen Wu, Qingsong Jiang et al.
Science Advances
Marine and coastal ecosystems
article

One-third of global lake nitrous oxide emissions are concentrated in the northern temperate zone (40°N–50°N)

Yang Gao, Yue Qin, Zhen Wu, Qingsong Jiang, Yujie Zhou, Jilin Huang, Yong Liu
article en

Abstract

Lacustrine nitrous oxide (N 2 O) emissions remain highly uncertain in the global greenhouse gas budget largely because of sparse observations and the omission of small lakes. Here we compile the Global Lake N 2 O database (GLON 2 O), integrating 6550 in situ measurements from 3829 lakes worldwide, and develop a machine learning framework to estimate emissions from lakes ≥0.1 square kilometers. To quantify previously overlooked systems, we construct the Global Small Lakes database (GSLAKES). We estimate that global lakes emit 0.208 teragrams of nitrogen per year of N 2 O, with approximately one-third originating from the northern temperate zone (40° to 50°N). Despite accounting for only 9.6% of total lake area, small lakes (<0.1 square kilometers) contribute 34.6% of global emissions, revealing a pronounced U-shaped relationship between emission intensity and lake size. We further identify hierarchical predictors of lake N 2 O emissions: Natural constraints determine biogeochemical potential, anthropogenic nitrogen inputs amplify emissions, and lake morphometry regulates spatial expression. These findings refine global lake N 2 O inventories and provide an empirical basis for scale-aware mitigation.

Science AdvancesVol. 12(38)
Chinese Academy of Sciences (CN), Institute of Tibetan Plateau Research (CN), Institute of Geographic Sciences and Natural Resources Research (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 14%
Marine and coastal ecosystems
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One-third of global lake nitrous oxide emissions are concentrated in the northern temperate zone (40°N–50°N) — Yang Gao, Yue Qin, et al. · Science Advances (2026) | TGRS Research Map | TGRS