碳汇
地球大气中的二氧化碳
环境科学
水槽(地理)
碳循环
二氧化碳
光合作用
陆地生态系统
土壤碳
生态系统
大气碳循环
全球变化
固碳
陆生植物
碳纤维
大气科学
气候变化
生态学
土壤科学
土壤水分
生物
植物
地质学
地理
地图学
复合材料
材料科学
复合数
作者
Anthony P. Walker,Martin G. De Kauwe,Ana Bastos,Soumaya Belmecheri,Katerina Georgiou,Ralph F. Keeling,Sean M. McMahon,Belinda E. Medlyn,D. J. Moore,Richard J. Norby,Sönke Zaehle,Kristina J. Anderson‐Teixeira,Giovanna Battipaglia,Roel Brienen,Kristine Grace M. Cabugao,Maxime Cailleret,Elliott Campbell,Josep G. Canadell,Philippe Ciais,Matthew E. Craig
摘要
Summary Atmospheric carbon dioxide concentration ([CO 2 ]) is increasing, which increases leaf‐scale photosynthesis and intrinsic water‐use efficiency. These direct responses have the potential to increase plant growth, vegetation biomass, and soil organic matter; transferring carbon from the atmosphere into terrestrial ecosystems (a carbon sink). A substantial global terrestrial carbon sink would slow the rate of [CO 2 ] increase and thus climate change. However, ecosystem CO 2 responses are complex or confounded by concurrent changes in multiple agents of global change and evidence for a [CO 2 ]‐driven terrestrial carbon sink can appear contradictory. Here we synthesize theory and broad, multidisciplinary evidence for the effects of increasing [CO 2 ] (iCO 2 ) on the global terrestrial carbon sink. Evidence suggests a substantial increase in global photosynthesis since pre‐industrial times. Established theory, supported by experiments, indicates that iCO 2 is likely responsible for about half of the increase. Global carbon budgeting, atmospheric data, and forest inventories indicate a historical carbon sink, and these apparent iCO 2 responses are high in comparison to experiments and predictions from theory. Plant mortality and soil carbon iCO 2 responses are highly uncertain. In conclusion, a range of evidence supports a positive terrestrial carbon sink in response to iCO 2 , albeit with uncertain magnitude and strong suggestion of a role for additional agents of global change.
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