Nitrous Oxide Emissions from Urban Green Spaces Substantially Offset Their Carbon Sequestration Benefits

Abstract Urban green spaces (UGS) are a cornerstone of global climate adaptation strategies, widely regarded as Nature-based solutions (NbS) for their ability to sequester carbon and mitigate heat islands. However, their net climate benefit remains uncertain due to the poorly quantified release of nitrous oxide (N2O), a potent greenhouse gas and ozone-depleting substance. Here, we present the national-scale assessment of N2O fluxes from China’s rapidly expanding UGS, based on high-frequency continuous monitoring and machine-learning extrapolation. We reveal that UGS function as intensive N2O sources, with a mean emission intensity of 12.5 kg·N·ha–1·yr–1, even though most monitored plots received no direct fertilizer application. These emissions are driven by a unique urban synergy where anthropogenic nitrogen enrichment interacts with irrigation pulses and the urban heat island effect to trigger explosive hot moments of denitrification. Crucially, when converted to CO2 equivalents, these N2O emissions offset 68% of the reported carbon sequestration benefits provided by China’s UGS vegetation. Our findings demonstrate that ignoring N2O emissions leads to a significant overestimation of the net climate benefit of urban greening. To ensure cities contribute effectively to climate neutrality, urban planning must pivot from simply maximizing green cover to implementing precision nitrogen-water management.

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Publication Details

Journal
Environmental Science & Technology
Published
2026-09-25
DOI
https://doi.org/10.1021/acs.est.6c07990
Primary Topic
Urban Heat Island Mitigation
Type
article
Field-Weighted Citation Impact
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article

Nitrous Oxide Emissions from Urban Green Spaces Substantially Offset Their Carbon Sequestration Benefits

Tengyu Liu, Chengxin Zhang, Lei Zhang, Lei Duan et al.
Environmental Science & Technology
Urban Heat Island Mitigation
article

Nitrous Oxide Emissions from Urban Green Spaces Substantially Offset Their Carbon Sequestration Benefits

Tengyu Liu, Chengxin Zhang, Lei Zhang, Lei Duan, Jinya Yang, Yu Zhao, 叶四清, Zimeng Zhang, Linlin Wang, Xiaoyan Wu, Yongmei Huang, Xuguang Chi, Loreena Avery, Qian Yu, Jan Mulder, Jiahao Liu
article en

Abstract

Abstract Urban green spaces (UGS) are a cornerstone of global climate adaptation strategies, widely regarded as Nature-based solutions (NbS) for their ability to sequester carbon and mitigate heat islands. However, their net climate benefit remains uncertain due to the poorly quantified release of nitrous oxide (N2O), a potent greenhouse gas and ozone-depleting substance. Here, we present the national-scale assessment of N2O fluxes from China’s rapidly expanding UGS, based on high-frequency continuous monitoring and machine-learning extrapolation. We reveal that UGS function as intensive N2O sources, with a mean emission intensity of 12.5 kg·N·ha–1·yr–1, even though most monitored plots received no direct fertilizer application. These emissions are driven by a unique urban synergy where anthropogenic nitrogen enrichment interacts with irrigation pulses and the urban heat island effect to trigger explosive hot moments of denitrification. Crucially, when converted to CO2 equivalents, these N2O emissions offset 68% of the reported carbon sequestration benefits provided by China’s UGS vegetation. Our findings demonstrate that ignoring N2O emissions leads to a significant overestimation of the net climate benefit of urban greening. To ensure cities contribute effectively to climate neutrality, urban planning must pivot from simply maximizing green cover to implementing precision nitrogen-water management.

Environmental Science & Technology
Nanjing Agricultural University (CN), University of Science and Technology of China (CN), Nanjing Tech University (CN), Beijing Normal University (CN), Shanghai Academy of Environmental Sciences (CN), Norwegian University of Life Sciences (NO), Nanjing University (CN), Tsinghua University (CN)
Climate action
Openalex Percentile: Top 19%
Urban Heat Island Mitigation
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