砷
毒砂
化学
磷酸盐
溶解
硫化物矿物
环境化学
碳酸氢盐
磷酸盐矿物
类金属
矿物
针铁矿
硅酸盐
碳酸盐矿物
硅酸盐矿物
降水
无机化学
黄铁矿
矿物学
金属
吸附
铜
黄铜矿
物理
有机化学
物理化学
气象学
作者
Xuanhao Wu,Samantha Burnell,Chelsea W. Neil,Doyoon Kim,Lijie Zhang,Haesung Jung,Young‐Shin Jun
标识
DOI:10.1021/acsearthspacechem.9b00273
摘要
Managed aquifer recharge (MAR) has been applied to meet quickly growing water demands. However, during MAR operations, the injected water can induce dissolution of local minerals and result in the release of toxic metalloids, such as arsenic. To alleviate this concern, it is pivotal to understand the effects of injected water chemistry on arsenic mobilization during MAR. In this bench-scale study with geochemical conditions relevant to MAR operations, we investigated the impacts of three environmentally abundant oxyanions (i.e., phosphate, silicate, and bicarbonate) on arsenic mobilization from arsenopyrite (FeAsS) and secondary mineral precipitation. Phosphate showed time-dependent reversed effects on arsenic mobility. In short term (6 h), phosphate promoted the dissolution of FeAsS through monodentate mononuclear surface complexation. However, over a longer experimental time (7 days), the enhanced formation of secondary minerals, such as iron(III) (hydr)oxide (maghemite, γ-Fe2O3) and iron(III) phosphate (phosphosiderite, FePO4·2H2O), helped to decrease arsenic mobility through readsorption. Silicate increased arsenic mobility and bicarbonate decreased arsenic mobility during the entire 7 day reaction. The phosphate system showed the highest amount and largest sizes of secondary precipitates among the three oxyanions. These new observations provide a useful mechanistic understanding of the impacts of different oxyanions on arsenic mobilization and secondary mineral formation during the geochemical transformation of arsenic-containing sulfide minerals in MAR and also offer useful insight into water chemistry factors during pretreatment for MAR source water.
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