土壤碳
环境科学
梯田(农业)
表土
地形地貌
生物地球化学循环
地球科学
固碳
土壤水分
农业
土壤科学
河流阶地
总有机碳
生态系统
生物地球化学
农林复合经营
水文学(农业)
土壤有机质
土壤功能
碳汇
碳纤维
地质学
腐蚀
沉积沉积环境
扰动(地质)
野外试验
生物多样性
植被(病理学)
气候变化
时序
生态学
作者
Pengzhi Zhao,Daniel Fallu,Sebastian Doetterl,Sara Cucchiaro,Paolo Tarolli,Ben Pears,Andreas Lang,Moritz Mainka,Xiaojing Ou,Jeanette Whitaker,Zhengang Wang,Antony G. Brown,Six Johan,K. van Oost
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2026-02-25
卷期号:12 (9): eaea8560-eaea8560
被引量:2
标识
DOI:10.1126/sciadv.aea8560
摘要
Agricultural terraces are among the most widespread human-made landforms. They profoundly reshape soil landscapes and influence the carbon cycle, yet the extent and drivers of their impact remain highly uncertain. By integrating field observations from 14 well-drained terrace landforms across a climatic-geochemical gradient with a data synthesis, we show that changes in soil organic carbon (SOC) stocks after terracing are governed by two coupled C turnover-geomorphic processes: replacement of lost topsoil C at eroding positions and stabilization of buried SOC at depositional positions. Climate strongly modulates these processes by shaping soil geochemistry and plant productivity, which in turn control SOC replacement and stabilization within terraces. Thus, terracing effects on SOC stocks shift from consistently positive in humid regions to mixed (positive and negative) outcomes in dry regions. This study establishes a framework for elucidating SOC dynamics in well-drained terrace systems and provides a scientific basis for targeted management strategies to enhance C sequestration in agricultural terraces globally.
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