永久冻土
环境科学
生态系统
气候变化
碳循环
全球变暖
陆地生态系统
大气(单位)
大气科学
碳纤维
地球科学
生态学
自然地理学
地质学
地理
气象学
复合数
生物
材料科学
复合材料
作者
Edward A. G. Schuur,James G. Bockheim,Josep G. Canadell,E. S. Euskirchen,Christopher B. Field,S. V. Goryachkin,Stefan Hagemann,Peter Kuhry,Peter M. Lafleur,Hanna Lee,G. G. Mazhitova,Frederick E. Nelson,Annette Rinke,V. E. Romanovsky,N. I. Shiklomanov,C. Tarnocai,Sergey Venevsky,Jason G. Vogel,S. A. Zimov
出处
期刊:BioScience
[Oxford University Press]
日期:2008-09-01
卷期号:58 (8): 701-714
被引量:1707
摘要
ABSTRACT Thawing permafrost and the resulting microbial decomposition of previously frozen organic carbon (C) is one of the most significant potential feedbacks from terrestrial ecosystems to the atmosphere in a changing climate. In this article we present an overview of the global permafrost C pool and of the processes that might transfer this C into the atmosphere, as well as the associated ecosystem changes that occur with thawing. We show that accounting for C stored deep in the permafrost more than doubles previous high-latitude inventory estimates, with this new estimate equivalent to twice the atmospheric C pool. The thawing of permafrost with warming occurs both gradually and catastrophically, exposing organic C to microbial decomposition. Other aspects of ecosystem dynamics can be altered by climate change along with thawing permafrost, such as growing season length, plant growth rates and species composition, and ecosystem energy exchange. However, these processes do not appear to be able to compensate for C release from thawing permafrost, making it likely that the net effect of widespread permafrost thawing will be a positive feedback to a warming climate.
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