Arsenite and arsenate leaching and retention on iron (hydr)oxide-coated sand column

被引:12
|
作者
Wang, Yin [1 ]
Sun, Lin [1 ]
Han, Tao [1 ]
Si, Youbin [1 ]
Wang, Rongfu [2 ]
机构
[1] Anhui Agr Univ, Sch Resources & Environm Sci, Hefei 230036, Peoples R China
[2] Anhui Agr Univ, Ctr Biotechnol, Hefei 230036, Peoples R China
基金
中国国家自然科学基金;
关键词
Arsenate; Arsenite; Ferrihydrite; Iron (hydr) oxides; Leaching; Retention; HUMIC-ACID; COMPETITIVE ADSORPTION; AQUEOUS-SOLUTION; HYDROXIDE; REMOVAL; ARSENIC(III); FERRIHYDRITE; SPECIATION; ADSORBENT; MOBILITY;
D O I
10.1007/s11368-015-1230-3
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Arsenite and arsenate leaching from iron (hydr)oxides is one major parameter affecting the mobility of arsenic in the natural environment. In the process of arsenic transfer to groundwater, the retention capacity of arsenic by different iron (hydr)oxides needs to be investigated. The aim of this study is to determine the retention capacity of arsenite or arsenate from the ferrihydrite, lepidocrocite, or magnetite-coated sand column in the leaching process as well as the influence factors on leaching. The leaching of arsenite and arsenate from columns loaded with ferrihydrite, magnetite, or lepidocrocite-coated quartz sand was examined, and the influence factors such as pH, phosphate, and humic acid (HA) contents on leaching and retention were also investigated. The retention performance of As(III) and As(V) depended on the type of iron (hydr)oxides: ferrihydrite > magnetite > lepidocrocite. The retention capacities of As(III) and As(V) by amorphous ferrihydrite versus magnetite and lepidocrocite are 3.25, 5.63 (As(III)) and 1.75, 3.65 (As(V)) times higher. The retention capacity of arsenic is largely affected by the pH of leaching solutions. The retention of As(III) by ferrihydrite is efficient in near-neutral or slightly acidic environments. The addition of phosphate or HA significantly affected the leaching and retention. The addition of phosphate severely inhibited the leaching and retention of As(III) and As(V) by ferrihydrite, and the inhibitory effect was more obvious along with the increase of phosphate concentration. The retention of As(III) and As(V) by ferrihydrite was significantly enhanced by the addition of low-dose HA but was inhibited by the addition of excessive HA. Retention performance of As(III) and As(V) from a ferrihydrite-coated sand column is greater than a magnetite- or a lepidocrocite-coated sand column, and the influence factors such as pH, phosphate, and HA affect the leaching and retention of As(III) and As(V). The results theoretically underlie the application of iron (hydr)oxide in arsenic pollution control.
引用
收藏
页码:486 / 496
页数:11
相关论文
共 50 条
  • [21] Boron sorption by manganese oxide-coated sand
    Tsadilas, CD
    Dimoyiannis, D
    Samaras, V
    COMMUNICATIONS IN SOIL SCIENCE AND PLANT ANALYSIS, 1998, 29 (15-16) : 2347 - 2353
  • [22] Transformation of bisphenol A by manganese oxide-coated sand
    Kunde Lin
    Yiwen Peng
    Xinwen Huang
    Jiafeng Ding
    Environmental Science and Pollution Research, 2013, 20 : 1461 - 1467
  • [23] Transformation of bisphenol A by manganese oxide-coated sand
    Lin, Kunde
    Peng, Yiwen
    Huang, Xinwen
    Ding, Jiafeng
    ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2013, 20 (03) : 1461 - 1467
  • [24] Uptake of arsenate by aluminum (hydr)oxide coated red scoria and pumice
    Asere, Tsegaye Girma
    De Clercq, Jeriffa
    Verbeken, Kim
    Tessema, Dejene A.
    Fufa, Fekadu
    Stevens, Christian V.
    Du Laing, Gijs
    APPLIED GEOCHEMISTRY, 2017, 78 : 83 - 95
  • [25] Removal of arsenic in drinking water by iron oxide-coated sand and ferrihydrite - Batch studies
    Thirunavkukkarasu, OS
    Viraraghavan, T
    Subramanian, KS
    WATER QUALITY RESEARCH JOURNAL OF CANADA, 2001, 36 (01): : 55 - 70
  • [26] Arsenic removal in an iron oxide-coated fungal biomass column: Analysis of breakthrough curves
    Pokhrel, D.
    Viraraghavan, T.
    BIORESOURCE TECHNOLOGY, 2008, 99 (06) : 2067 - 2071
  • [27] Removal of iron and arsenic (III) from drinking water using iron oxide-coated sand and limestone
    Rashmi R. Devi
    Iohborlang M. Umlong
    Bodhaditya Das
    Kusum Borah
    Ashim J. Thakur
    Prasanta K. Raul
    Saumen Banerjee
    Lokendra Singh
    Applied Water Science, 2014, 4 (2) : 175 - 182
  • [28] Effects of phosphate on the transport of graphene oxide nanoparticles in saturated clean and iron oxide-coated sand columns
    Jiuyan Chen
    Weifeng Chen
    Taotao Lu
    Yumeng Song
    Haojing Zhang
    Mengjie Wang
    Xinhai Wang
    Zhichong Qi
    Minghua Lu
    Journal of Environmental Sciences, 2021, 103 (05) : 80 - 92
  • [29] Effects of phosphate on the transport of graphene oxide nanoparticles in saturated clean and iron oxide-coated sand columns
    Chen, Jiuyan
    Chen, Weifeng
    Lu, Taotao
    Song, Yumeng
    Zhang, Haojing
    Wang, Mengjie
    Wang, Xinhai
    Qi, Zhichong
    Lu, Minghua
    JOURNAL OF ENVIRONMENTAL SCIENCES, 2021, 103 (103): : 80 - 92
  • [30] Removal of iron and arsenic (III) from drinking water using iron oxide-coated sand and limestone
    Devi, Rashmi R.
    Umlong, Iohborlang M.
    Das, Bodhaditya
    Borah, Kusum
    Thakur, Ashim J.
    Raul, Prasanta K.
    Banerjee, Saumen
    Singh, Lokendra
    APPLIED WATER SCIENCE, 2014, 4 (02) : 175 - 182