Emerging compound air-soil heatwaves amplify global vegetation losses

Abstract Compound air-soil heatwaves—periods in which extreme air and soil temperatures co-occur—pose a growing threat to terrestrial ecosystems, yet their occurrence and impacts remain poorly understood. Here, we show that compound air-soil heatwaves have become more frequent (0.59 ± 0.07 events decade⁻¹), longer-lasting (0.18 ± 0.04 days decade⁻¹), and more intense (4.02 ± 0.77 °C × days decade⁻¹) since 1979. These rates of change far exceed those for independent air and soil heatwaves and are driving increasingly widespread reductions in vegetation productivity. On average, ∼98.5 million km2 of land experienced gross primary productivity (GPP) losses during compound air-soil heatwaves. Globally, annual GPP losses have risen by 0.61 gC m⁻2 yr⁻1 decade⁻1, which is a 30.5- and 12.2-fold increase relative to those of independent air and soil heatwaves, respectively. Climate model projections indicate that compound air-soil heatwaves will continue to intensify and expand spatially under future warming, particularly under the high-emission scenario. Given pronounced GPP reductions during compound heatwaves, their projected intensification is likely to pose an increasing threat to terrestrial ecosystem productivity. Our findings highlight the escalating ecological impacts of compound heatwaves and underscore the urgent need for adaptation and preparedness strategies to address this compound hazard in a warming world.

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Publication Details

Journal
National Science Review
Published
2026-09-17
DOI
https://doi.org/10.1093/nsr/nwag603
Primary Topic
Climate variability and models
Type
article
Field-Weighted Citation Impact
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article

Emerging compound air-soil heatwaves amplify global vegetation losses

Manqing Shi, Haicheng Zhang, Qiuting Wang, Tao Pei et al.
National Science Review
Climate variability and models
article

Emerging compound air-soil heatwaves amplify global vegetation losses

Manqing Shi, Haicheng Zhang, Qiuting Wang, Tao Pei, Xing Li, Weilin Liao, Xiaoping Liu, Zhen Liu, R Iestyn Woolway, Sijia Wu, Ming Luo, Xiaoyu Wang
article en

Abstract

Abstract Compound air-soil heatwaves—periods in which extreme air and soil temperatures co-occur—pose a growing threat to terrestrial ecosystems, yet their occurrence and impacts remain poorly understood. Here, we show that compound air-soil heatwaves have become more frequent (0.59 ± 0.07 events decade⁻¹), longer-lasting (0.18 ± 0.04 days decade⁻¹), and more intense (4.02 ± 0.77 °C × days decade⁻¹) since 1979. These rates of change far exceed those for independent air and soil heatwaves and are driving increasingly widespread reductions in vegetation productivity. On average, ∼98.5 million km2 of land experienced gross primary productivity (GPP) losses during compound air-soil heatwaves. Globally, annual GPP losses have risen by 0.61 gC m⁻2 yr⁻1 decade⁻1, which is a 30.5- and 12.2-fold increase relative to those of independent air and soil heatwaves, respectively. Climate model projections indicate that compound air-soil heatwaves will continue to intensify and expand spatially under future warming, particularly under the high-emission scenario. Given pronounced GPP reductions during compound heatwaves, their projected intensification is likely to pose an increasing threat to terrestrial ecosystem productivity. Our findings highlight the escalating ecological impacts of compound heatwaves and underscore the urgent need for adaptation and preparedness strategies to address this compound hazard in a warming world.

National Science Review
Sun Yat-sen University (CN), Bangor University (GB), Chinese Academy of Sciences (CN), Jiangsu Center for Collaborative Innovation in Geographical Information Resource Development and Application (CN), Institute of Geographic Sciences and Natural Resources Research (CN), University of Chinese Academy of Sciences (CN), University of Hong Kong (HK), South China University of Technology (CN)
Climate action
Openalex Percentile: Top 14%
Climate variability and models
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