期刊论文详细信息
PLoS One
Soil Respiration in Relation to Photosynthesis of Quercus mongolica Trees at Elevated CO2
Xiu-Xiu Wang1  Yumei Zhou2  Xu-Bing Cheng2  A-Nan Fan2  Lian-Xuan Shi3  Cun-Guo Wang3  Shijie Han4  Mai-He Li5 
[1] Dalian Forest Institute, Dalian, China;Department of Forest Ecology, Institute of Applied Ecology, Chinese Academy of Sciences, Shenyang, China;Graduate School of Chinese Academy of Sciences, Beijing, China;School of Life Science, Northeast Normal University, Changchun, China;Tree Physiology Group, Swiss Federal Research Institute WSL, Birmensdorf, Switzerland
关键词: Soil respiration;    Carbon dioxide;    Photosynthesis;    Forests;    Forest ecology;    Seasons;    Pines;    Temperate forests;   
DOI  :  10.1371/journal.pone.0015134
学科分类:医学(综合)
来源: Public Library of Science
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【 摘 要 】

Knowledge of soil respiration and photosynthesis under elevated CO2 is crucial for exactly understanding and predicting the carbon balance in forest ecosystems in a rapid CO2-enriched world. Quercus mongolica Fischer ex Ledebour seedlings were planted in open-top chambers exposed to elevated CO2 (EC = 500 µmol mol−1) and ambient CO2 (AC = 370 µmol mol−1) from 2005 to 2008. Daily, seasonal and inter-annual variations in soil respiration and photosynthetic assimilation were measured during 2007 and 2008 growing seasons. EC significantly stimulated the daytime soil respiration by 24.5% (322.4 at EC vs. 259.0 mg CO2 m−2 hr−1 at AC) in 2007 and 21.0% (281.2 at EC vs. 232.6 mg CO2 m−2 hr−1 at AC) in 2008, and increased the daytime CO2 assimilation by 28.8% (624.1 at EC vs. 484.6 mg CO2 m−2 hr−1 at AC) across the two growing seasons. The temporal variation in soil respiration was positively correlated with the aboveground photosynthesis, soil temperature, and soil water content at both EC and AC. EC did not affect the temperature sensitivity of soil respiration. The increased daytime soil respiration at EC resulted mainly from the increased aboveground photosynthesis. The present study indicates that increases in CO2 fixation of plants in a CO2-rich world will rapidly return to the atmosphere by increased soil respiration.

【 授权许可】

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