Experiment-based geochemical modeling of Arsenic(V) and Arsenic(III) adsorption onto aquifer sediments from an inland basin

被引:25
作者
Gao, Zhipeng [1 ,2 ,3 ]
Guo, Huaming [1 ,2 ,3 ]
Zhao, Bo [2 ,3 ]
Wang, Ao [2 ,3 ]
Han, Shuangbao [4 ]
Dong, Hailiang [1 ]
机构
[1] China Univ Geosci Beijing, State Key Lab Biogeol & Environm Geol, Beijing 100083, Peoples R China
[2] China Univ Geosci Beijing, MOE Key Lab Groundwater Circulat & Environm Evolu, Beijing 100083, Peoples R China
[3] China Univ Geosci Beijing, Sch Water Resources & Environm, Beijing 100083, Peoples R China
[4] China Geol Survey, Ctr Hydrogeol & Environm Geol, Baoding 071051, Peoples R China
基金
中国国家自然科学基金;
关键词
Adsorption; Arsenic; Hetao Basin; Oxidation; Surface complexation model; RED-RIVER FLOODPLAIN; SURFACE COMPLEXATION; ARSENATE ADSORPTION; HETAO BASIN; COMPETITIVE ADSORPTION; NATURAL SIDERITE; HOLOCENE AQUIFER; IRON-OXIDES; GROUNDWATER; SORPTION;
D O I
10.1016/j.jhydrol.2020.125094
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Natural occurrence of groundwater arsenic (As) exists in many aquifers and threatens the health of hundreds of millions of people. Adsorption of As is critical to its distribution in aquifer groundwater, as it can lower dissolved As concentrations and provide a source for As mobilization. However, little is known about As adsorption onto aquifer sediments in inland basins. To fill this gap, we investigated As(V) and As(III) adsorption onto a brown sediment hosting low-As groundwater and two gray sediments hosting high-As groundwater sampled from an approximate flow path of the Hetao Basin, China. Those three sediments had total Fe contents of around 1.3% and As contents of around 9.0 mu g/g. Arsenic(III) adsorption were kinetically faster than As(V) adsorption on the sediments. The characteristics of As(V) and As(III) adsorption both exhibited nonlinear isotherms, with adsorption decreasing with increases in pH from around 7 to 9 (typical ambient groundwater pH of inland basins). Generally, As(V) adsorption was greater than As(III) adsorption at pH < 7.5, whereas the opposite was true at pH > 7.5. Phosphate competed more strongly with As(V) adsorption than As(III) adsorption, while HCO3 competed more strongly with As(III) adsorption. Aqueous As(III) was oxidized to As(V) by interaction with the brown sediment, mainly due to its high content of extractable Mn(IV) oxides. Arsenic adsorption onto the sediments was primarily controlled by the content and crystallinity of their Fe(III) oxides. The brown sediment showed weaker affinity for As(V) and As(III) than the gray sediments, possibly due to the better crystallinity of the Fe(III) oxides in the brown sediment. In the two gray sediments containing Fe(III) oxides with similar crystallinities, the As adsorption capacity was related to the content of Fe(III) oxides. Geochemical models were developed to quantitatively simulate As(V) and As(III) adsorption onto aquifer sediments. Experimental data were approximated well by these models, indicating that As(V) adsorption decreases at elevated pH and PO4 concentration, while As(III) desorption is favored at high pH and concentrations of HCO3 and PO4. According to the models, the extent and kinetics of As(III) oxidation are controlled by the number of free oxidation sites in Mn (IV) oxides, pH, and As(III) concentration. This study suggests that the characteristics of As adsorption are highly dependent on the mineral phases existing in the sediments, which must be fully understood to quantify the reactive transport of groundwater As in aquifer systems.
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页数:17
相关论文
共 103 条
[1]   Kinetics of sorption and abiotic oxidation of arsenic(III) by aquifer materials [J].
Amirbahman, A ;
Kent, DB ;
Curtis, GP ;
Davis, JA .
GEOCHIMICA ET COSMOCHIMICA ACTA, 2006, 70 (03) :533-547
[2]   Mobilization of arsenic from subsurface sediments by effect of bicarbonate ions in groundwater [J].
Anawar, HM ;
Akai, J ;
Sakugawa, H .
CHEMOSPHERE, 2004, 54 (06) :753-762
[3]   Surface complexation of ferrous iron and carbonate on ferrihydrite and the mobilization of arsenic [J].
Appelo, CAJ ;
Van der Weiden, MJJ ;
Tournassat, C ;
Charlet, L .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2002, 36 (14) :3096-3103
[4]  
Appelo CAJ, 2005, GEOCHEMISTRY GROUNDW, P649
[5]  
Ball J.W., 1991, WATEQ4F USERS MANUAL, DOI DOI 10.3133/OFR90129
[6]   Arsenite sorption on troilite (FeS) and pyrite (FeS2) [J].
Bostick, BC ;
Fendorf, S .
GEOCHIMICA ET COSMOCHIMICA ACTA, 2003, 67 (05) :909-921
[7]   Fe(II)-Fe(III)-Bearing Phases As a Mineralogical Control on the Heterogeneity of Arsenic in Southeast Asian Groundwater [J].
Burnol, Andre ;
Charlet, Laurent .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2010, 44 (19) :7541-7547
[8]   Controls of paleochannels on groundwater arsenic distribution in shallow aquifers of alluvial plain in the Hetao Basin, China [J].
Cao, Wengeng ;
Guo, Huaming ;
Zhang, Yilong ;
Ma, Rong ;
Li, Yasong ;
Dong, Qiuyao ;
Li, Yuanjie ;
Zhao, Ruike .
SCIENCE OF THE TOTAL ENVIRONMENT, 2018, 613 :958-968
[9]   Effect of Aqueous Fe(II) on Arsenate Sorption on Goethite and Hematite [J].
Catalano, Jeffrey G. ;
Luo, Yun ;
Otemuyiwa, Bamidele .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2011, 45 (20) :8826-8833
[10]   Adsorption of arsenite and arsenate onto muscovite and biotite mica [J].
Chakraborty, Sudipta ;
Wolthers, Mariette ;
Chatterjee, Debashis ;
Charlet, Laurent .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2007, 309 (02) :392-401