生物地球化学
生物地球化学循环
环境科学
生态系统
碳循环
全球变化
温室气体
背景(考古学)
固碳
陆地生态系统
气候变化
碳通量
全球变暖
生态学
二氧化碳
地理
生物
考古
作者
Tom J. Battin,Ronny Lauerwald,Emily S. Bernhardt,Enrico Bertuzzo,Lluís Gómez‐Gener,Robert O. Hall,Erin R. Hotchkiss,Taylor Maavara,Tamlin M. Pavelsky,Lishan Ran,Peter A. Raymond,Judith A. Rosentreter,Pierre Regnier
出处
期刊:Nature
[Springer Nature]
日期:2023-01-18
卷期号:613 (7944): 449-459
被引量:199
标识
DOI:10.1038/s41586-022-05500-8
摘要
River networks represent the largest biogeochemical nexus between the continents, ocean and atmosphere. Our current understanding of the role of rivers in the global carbon cycle remains limited, which makes it difficult to predict how global change may alter the timing and spatial distribution of riverine carbon sequestration and greenhouse gas emissions. Here we review the state of river ecosystem metabolism research and synthesize the current best available estimates of river ecosystem metabolism. We quantify the organic and inorganic carbon flux from land to global rivers and show that their net ecosystem production and carbon dioxide emissions shift the organic to inorganic carbon balance en route from land to the coastal ocean. Furthermore, we discuss how global change may affect river ecosystem metabolism and related carbon fluxes and identify research directions that can help to develop better predictions of the effects of global change on riverine ecosystem processes. We argue that a global river observing system will play a key role in understanding river networks and their future evolution in the context of the global carbon budget. A review of current river ecosystem metabolism research quantifies the organic and inorganic carbon flux from land to global rivers and demonstrates that the carbon balance can be influenced by a changing world.
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