Biogeochemical cycling in paddy soils controls antimony transformation: Roles of iron (oxyhydr)oxides, organic matter and sulfate

生物地球化学循环 溶解有机碳 化学 环境化学 硫酸盐 土壤水分 有机质 溶解 自行车 曝气 无氧运动 无机化学 环境科学 土壤科学 有机化学 考古 历史 生理学 物理化学 生物
作者
Yizhou He,Yang Yang,Wenting Chi,Shiwen Hu,Guojun Chen,Qi Wang,Kuan Cheng,Chao Guo,Tongxu Liu,Bingqing Xia
出处
期刊:Journal of Hazardous Materials [Elsevier BV]
卷期号:464: 132979-132979 被引量:4
标识
DOI:10.1016/j.jhazmat.2023.132979
摘要

In paddy fields, periodic flooding and drainage phases can significantly affect the availability of antimony (Sb), but the underlying mechanisms remain unclear. In this study, Sb-contaminated paddy soil was incubated under anaerobic (40 day) and subsequently aerobic (40-55 day) conditions. The Sb fractions was investigated and a kinetic model was established to quantitatively evaluate the main processes controlling Sb transformation. Under anaerobic conditions, the reductive dissolution of iron (Fe) (oxyhydr)oxides, the release of soil colloids, and dissolved organic carbon (DOC) could facilitate the release of Sb(V), while newly released Sb(V) were synchronously reduced to Sb(III) that could be incorporated into the solid phase (34.1%, 40 day) or precipitated as Sb2S3 (9.7%, 40 day). After soil aeration, a significant increase in dissolved and extracted Sb(V) (34.7%, 45 day) was observed due to the Sb(III) oxidization by the reactive oxygen species (ROS) generated from Fe(II) oxidization. The dissolved and extracted Sb(V) were simultaneously incorporated into the solid phase as the re-aggregation of soil colloids and DOC, and only contributed to 17.1% of the total Sb content at the end of aerobic phase (55 day). Our results elucidated the mechanisms about how biogeochemical Fe/S/C cycling jointly controlled Sb transformation in paddy systems.
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