环境科学
泰加语
固碳
生态系统
北方的
初级生产
土壤水分
氮气
生物量(生态学)
碳汇
农学
土壤碳
土壤有机质
氮气循环
森林生态学
碳循环
沉积(地质)
热带和亚热带湿润阔叶林
优势(遗传学)
森林地面
有机质
陆地生态系统
水槽(地理)
生态学
总有机碳
农林复合经营
生物地球化学
营养物
气候变化
全球变暖
植物群落
环境化学
土层
土壤科学
作者
Geshere Abdisa Gurmesa,A. Wang,Shanlong Li,Feifei Zhu,Kai Huang,Yihang Duan,Qinggong Mao,Quan Zhi,Ronghua Kang,Per Gundersen,Weixing Zhu,Yunting Fang
摘要
ABSTRACT Anthropogenic nitrogen (N) deposition alters forest functioning and their capacity to sequester carbon (C), yet its contribution to the forest C sink depends on N retention and allocation between plant biomass and soil pools. Despite high N deposition across China, the magnitude and drivers of N retention and contribution to forest C sequestration remain unclear due to a lack of systematic regional synthesis. Here, we synthesized data from decades of 15 N tracer experiments spanning boreal to tropical regions of China to quantify the retention of deposited N, distribution among plant and soil pools, and contribution to forest C sequestration. On average, Chinese forests retained ~65% of the deposited N, with about two‐thirds stored in the soil. Total retention and partitioning of N varied with climate, successional stage, and N forms. Soil organic layer retention declined, while mineral soil retention increased along a north–south gradient in mean annual temperature. Chronically N‐saturated and disturbed forests exhibited low plant retention, whereas other forests showed substantial uptake across climate zones. Total ecosystem retention efficiency generally declined from boreal to tropical forests. Across successional stages, retention did not differ significantly; however, primary forests retained more deposited N in mineral soils, whereas plantations favored retention in the organic layer. Stoichiometric scaling indicates that CN response (kg C sequestered per kg deposited N) varies among forest types, ranging from ~7 to 40 kg C kg −1 N, with boreal forests and plantations exhibiting the strongest C response due to greater N limitation. This suggests that over the past decade, N deposition enhanced C sequestration by approximately 0.11 Pg C year −1 , accounting for 20%–30% of China's forest C sink. Overall, these findings advance understanding of the drivers of deposited N retention and its contribution to C sequestration, with implications for predicting forest N and C dynamics under global change.
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