尾矿
成土作用
溶解有机碳
根际
环境化学
生物地球化学循环
有机质
生物地球化学
土壤有机质
化学
风化作用
微生物种群生物学
土壤水分
环境科学
土壤科学
地质学
地球化学
有机化学
古生物学
物理化学
细菌
作者
Songlin Wu,Fang You,Berin A. Boughton,Yunjia Liu,Tuan A.H. Nguyen,Jeremy Wykes,Gordon Southam,Lachlan M. Robertson,Ting‐Shan Chan,Ying‐Rui Lu,Adrian Lutz,Dingyi Yu,Qing Yi,Narottam Saha,Longbin Huang
标识
DOI:10.1021/acs.est.1c04527
摘要
Dissolved organic matter (DOM) plays an important role in soil structure and biogeochemical function development, which are fundamental for the eco-engineering of tailings-soil formation to underpin sustainable tailings rehabilitation. In the present study, we have characterized the DOM composition and its molecular changes in an alkaline Fe ore tailing primed with organic matter (OM) amendment and plant colonization. The results demonstrated that microbial OM decomposition dramatically increased DOM richness and average molecular weight, as well as its degree of unsaturation, aromaticity, and oxidation in the tailings. Plant colonization drove molecular shifts of DOM by depleting the unsaturated compounds with a high value of nominal oxidation state of carbon (NOSC), such as tannin-like and carboxyl-rich polycyclic-like compounds. This may be partially related to their sequestration by secondary Fe-Si minerals formed from rhizosphere-driven mineral weathering. Furthermore, the molecular shifts of DOM may have also resulted from plant-regulated microbial community changes, which further influenced DOM molecules through microbial-DOM interactions. These findings contribute to the understanding of DOM biogeochemistry and ecofunctionality in the tailings during early pedogenesis driven by OM input and pioneer plant/microbial colonization, providing an important basis for the development of strategies and technologies toward the eco-engineering of tailings-soil formation.
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