中观
环境科学
土壤呼吸
饱和(图论)
氮气
呼吸
沉积(地质)
环境化学
土壤科学
水文学(农业)
土壤水分
生态学
化学
生态系统
生物
植物
数学
地质学
沉积物
有机化学
组合数学
古生物学
岩土工程
作者
Renshan Li,Xinkuan Han,Yanfeng Bai,Fangfang Zhang,Honggang Sun,Weidong Zhang,Qingpeng Yang,Silong Wang
出处
期刊:Geoderma
[Elsevier BV]
日期:2025-05-06
卷期号:458: 117331-117331
被引量:1
标识
DOI:10.1016/j.geoderma.2025.117331
摘要
• Soil respiration is enhanced by N deposition. • N deposition increases autotrophic but decreases heterotrophic respiration. • Soil respiration has a N saturation threshold in response to growing N deposition. • Tree growth accounts for the non-linear trend of soil respiration along N gradients. Whether there is a N saturation threshold for the response of soil respiration (R s ) to increasing nitrogen (N) deposition remains unclear in forest ecosystems. In this work, a simulated N deposition experiment involving five levels of N addition (0 to 44.8 g N m −2 yr −1 ) was performed in a mesocosm experiment platform with young Chinese fir ( Cunninghamia lanceolata ) trees planted on it. R s and its autotrophic (R a ) and heterotrophic (R h ) components were measured for four years, and the N saturation threshold was estimated using a quadratic-plus-plateau model. With increasing rate of N addition, R s and R a first increased dramatically until the critical N addition rate of 12.2 and 13.6 g N m −2 yr −1 , respectively, and then leveled off. A similar non-linear increase in tree growth was also detected with N addition. In contrast, R h continued to decrease as N addition increases, primarily a consequence of the N-increased recalcitrance of soil organic C, as evidenced by the decreased gram-negative bacteria biomass coupled with increased polyphenol oxidase activity. Our results indicated (1) that there was a N saturation threshold for the soil respiration, before which respiration rate increased with N addition and such an increase vanished thereafter; and (2) that the N saturation threshold of soil respiration was driven by autotrophic rather than heterotrophic respiration. This study advanced our understanding of the response of forest carbon cycle to growing N deposition.
科研通智能强力驱动
Strongly Powered by AbleSci AI