锑
环境化学
生物地球化学循环
沉积物
环境修复
化学
缺氧水域
硫化物
氧化还原
焊剂(冶金)
扩散
污染物
溶解
遗传算法
微观世界
矿物学
生物利用度
无机化学
沉积物-水界面
地表水
硫化物矿物
薄膜中的扩散梯度
转化(遗传学)
污染
X射线光电子能谱
砷
锌
氧化物
环境科学
自行车
地球化学循环
水污染
作者
YaoJen Tu,Zhao Jin,Yalong Li,Fei Zhang,Jin Wang,Shenghui Liu,Yanping Duan
标识
DOI:10.1021/acs.est.5c08166
摘要
Antimony (Sb) is a priority pollutant due to its toxicity and carcinogenicity, yet its speciation and transportation at the sediment-water interface (SWI) remain poorly understood. Here, we combine field investigations in the Taipu River with laboratory experiments to elucidate the distribution and biogeochemical transformation of Sb at the SWI. Pore waters exhibit Sb concentrations substantially higher than those in overlying waters, while sediment cores show maximum Sb accumulation at depths of 5-10 cm and lower concentrations in surface sediments. Diffusive gradients in thin films (DGTs) reveal decreasing labile Sb with depth, indicating upward diffusion of reduced Sb from anoxic zones; however, flux calculations demonstrate a dominant net downward transport driven by oxidative scavenging in oxic sediments. Laboratory simulations show complete oxidation of dissolved Sb(III) to Sb(V) within 42 days. X-ray photoelectron spectroscopy confirms that Fe/Mn (oxyhydr)oxides mediate this oxidation and immobilize Sb(V) through strong surface binding. Sediment incubations further reveal a transient increase in Sb bioavailability during Fe/Mn oxide dissolution, followed by long-term stabilization in residual phases. These results highlight the dual role of Fe/Mn minerals in regulating Sb redox cycling and sequestration, providing mechanistic insights into Sb mobility, ecological risk, and remediation strategies in riverine environments.
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