中国科学院机构知识库网格
Chinese Academy of Sciences Institutional Repositories Grid
Large latitudinal difference in soil nitrogen limitation on global vegetation response to elevated CO2

文献类型:期刊论文

作者Yan, Hao1; Wang, Shaoqiang2,3; Shugart, Herman H.4
刊名AGRICULTURAL AND FOREST METEOROLOGY
出版日期2023-11-15
卷号342页码:14
ISSN号0168-1923
关键词Plant photosynthesis CO2 fertilization Nitrogen limitation Tropical forest Light use efficiency Remote sensing
DOI10.1016/j.agrformet.2023.109717
通讯作者Yan, Hao(yanhaon@hotmail.com)
英文摘要This study is the first to evaluate latitudinal characteristics of the coupled impacts of atmospheric-CO2 fertilization and soil nitrogen limitation on global plant photosynthesis for 2001-2019 by using a remote sensing-based light use efficiency model (DTECM-l-CN). It predicted that the global GPP should have increased by 0.40 Pg C a (-) (2) (P-MK < 0.001) from 2001 to 2019. Leaf area index change contributed 55.0% to this predicted increase in the global GPP trend, followed by coupled CO2 and soil nitrogen effects (32.5%) and the effects from the climate forcing (12.5%). Without CO2 fertilization effects, the global GPP trend was predicted lower by 32.5%. With CO2 fertilization effects included but without a nitrogen constraint, the model would predict global GPP trend higher by 67.5%. These contrasting changes strongly imply the need to consider all these effects simultaneously to estimate future GPP. Comparing the annual mean CO2 fertilization factor with and without soil nitrogen stress showed that the fertilization factor under soil nitrogen stress was only 62.5% of that with no soil nitrogen stress.As a result of soil nitrogen stress, annual mean CO2 response metric (R-CO2), indicating the CO2 fertilization effect, declined from 2002 to 2019. Soil nitrogen stress was found to attenuate the positive effect of CO2 fertilization on GPP trend with a large latitudinal difference, i.e., the tropics had a weaker CO2 fertilization effect than the extratropics. This study highlights that soil nitrogen has progressively become limiting on plant response to CO2 fertilization with a large latitudinal divergence.
WOS关键词NET PRIMARY PRODUCTIVITY ; GROSS PRIMARY PRODUCTION ; USE EFFICIENCY MODEL ; PHOSPHORUS LIMITATION ; CARBON-DIOXIDE ; INCREASING CO2 ; WATER ; FERTILIZATION ; SATELLITE ; ECOSYSTEMS
资助项目Guangxi Key Research and Development Project[Guike AB23026052] ; National Natural Science Foundation of China[41571327] ; University of Virginia
WOS研究方向Agriculture ; Forestry ; Meteorology & Atmospheric Sciences
语种英语
出版者ELSEVIER
WOS记录号WOS:001145331700001
资助机构Guangxi Key Research and Development Project ; National Natural Science Foundation of China ; University of Virginia
源URL[http://ir.igsnrr.ac.cn/handle/311030/202115]  
专题中国科学院地理科学与资源研究所
通讯作者Yan, Hao
作者单位1.China Meteorol Adm, Natl Meteorol Ctr, Beijing 100081, Peoples R China
2.Chinese Acad Sci, Key Lab Ecosyst Network Observat & Modelling, Inst Geog Sci & Nat Resources Res, Beijing 100101, Peoples R China
3.Univ Chinese Acad Sci, Coll Resources & Environm, Beijing 100101, Peoples R China
4.Univ Virginia, Environm Sci Dept, Charlottesville, VA 22904 USA
推荐引用方式
GB/T 7714
Yan, Hao,Wang, Shaoqiang,Shugart, Herman H.. Large latitudinal difference in soil nitrogen limitation on global vegetation response to elevated CO2[J]. AGRICULTURAL AND FOREST METEOROLOGY,2023,342:14.
APA Yan, Hao,Wang, Shaoqiang,&Shugart, Herman H..(2023).Large latitudinal difference in soil nitrogen limitation on global vegetation response to elevated CO2.AGRICULTURAL AND FOREST METEOROLOGY,342,14.
MLA Yan, Hao,et al."Large latitudinal difference in soil nitrogen limitation on global vegetation response to elevated CO2".AGRICULTURAL AND FOREST METEOROLOGY 342(2023):14.

入库方式: OAI收割

来源:地理科学与资源研究所

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