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Global vegetation production may decrease in this century due to rising atmospheric dryness

delete2025-10-23
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PRE
AI
S
Shangrong Lin
X
Xiuzhi Chen
J
Jiangzhou Xia
Q
Qinchuan Xin
Z
Zheng Fu
T
Tiewei Li
Q
Qinhuo Liu
S
Shilong Piao
W
Wenping Yuan *
DOI:10.1038/s41559-025-02885-3delete
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Abstract

Abstract

En 中文
Previous projections from Earth system models have suggested that rising atmospheric CO2 concentrations would stimulate global vegetation production through the CO2 fertilization effect. Here we show that increased atmospheric dryness driven by climate warming will substantially counteract this effect. Using measurements from global eddy-covariance sites and a process-based model, we project that global vegetation gross primary production (GPP) will peak around the middle of the twenty-first century and subsequently decline. The peak of global GPP is projected to increase by only 5.4 ± 0.5% compared with the present. The stalled increase in GPP is more prominent in tropical regions. Additionally, the increased atmospheric dryness resulting from two non-CO2 greenhouse gases (CH4 and N2O) plays an important role in GPP changes. These gases induce climate warming and atmospheric dryness but, unlike CO2, lack a fertilization effect. This study underscores that climate warming-induced atmospheric dryness markedly reduces terrestrial vegetation production, potentially limiting the terrestrial carbon sink in the future. Rising atmospheric carbon dioxide concentrations could stimulate plant photosynthesis and production. However, using the measurements from global eddy-covariance sites, this study shows that continued increases in atmospheric aridity in the future will counteract most of this fertilization effect.
Keywords:
CO2 fertilization effect
atmospheric dryness
global vegetation production
climate warming
gross primary production

Journal

Nature Ecology and Evolution cover
Nature Ecology and Evolution
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14.5
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2.8K
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Beijing Normal University
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