环境科学
土壤水分
土壤碳
生物地球化学循环
生态系统
生物量(生态学)
营养物
土壤有机质
环境化学
垃圾箱
土壤pH值
农学
林地
生态化学计量学
土壤科学
温室气体
化学
土壤酸化
自行车
营养循环
土壤质量
土地利用、土地利用的变化和林业
二氧化碳
表土
总有机碳
土壤生物多样性
土地利用
氮气
有机质
阳离子交换容量
溶解有机碳
碳循环
陆地生态系统
植物凋落物
土层
碳纤维
微生物种群生物学
硝化作用
土壤肥力
生态学
作者
Kun Zhu,Yuanchuang Lu,Hongyu Ran,Laura Zavattaro,Ying Liu,Gang Wang,Weida Gao
摘要
ABSTRACT The intensity of land use is known to alter soil organic carbon (SOC), total nitrogen (TN), and their stoichiometric ratios, yet the underlying biogeochemical mechanisms and the factors governing soil resilience remain unclear. This study investigates the process‐based soil response to long‐term, divergent land‐use intensity changes. We compared adjacent plots converted from cropland to either low‐intensity poplar woodland or a high‐intensity greenhouse vegetable system, analyzing soil profiles to 100 cm depth across two distinct soil textures. The conversion to woodland initiated a C‐driven pathway, where inputs of C‐rich litter increased surface SOC and elevated C:N ratios by 4.1%–18.9%. This C accrual was possibly linked to a shift toward a fungal‐dominated microbial community, as indicated by high microbial biomass C:N ratios (9.6–14.1). In contrast, the high‐intensity greenhouse system triggered an N‐driven pathway; heavy organic and inorganic N inputs substantially increased both SOC and TN but decreased C:N ratios by 33.7%–86.6%. This was caused by intensified nitrification, which drove soil acidification and reduced soil pH buffering capacity by 3.4%–41.6%. Crucially, we identify soil pH buffering capacity as a primary control; soils with stronger buffering capacity attenuated these divergent stoichiometric responses by maintaining a more stable microbial biomass composition, which was crucial for stabilizing nutrient availability and buffering soil ecosystems against the impacts of high land‐use intensity.
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