Redox reactions in the Fe-AS-O2 system

被引:36
作者
Johnston, Richard Bart
Singer, Philip C.
机构
[1] United Nations Childrens Fund, Water & Environm Sanitat Sect, Dhaka 1000, Bangladesh
[2] Univ N Carolina, Dept Environm Sci & Engn, Chapel Hill, NC 27516 USA
基金
美国国家科学基金会;
关键词
arsenic; iron; good's buffers; oxidation; reduction; groundwater;
D O I
10.1016/j.chemosphere.2007.03.036
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
We have examined two redox reactions involving arsenic and iron at near-neutral pH: the reduction of As(V) by Fe(II) under anoxic conditions, and the co-oxidation of As(III) during Fe(II) oxygenation. We also considered the impact of goethite, pH buffers, and radical scavengers on these reactions. In a series of anoxic experiments, Fe(II) was found to reduce As(V) in the presence of goethite, but not in homogeneous solution. The reaction rate increased with increasing pH and Fe(II) concentration, but in all cases was relatively slow. In aerobic experiments, the kinetics of Fe(II) oxygenation at neutral pH, and the corresponding oxidation of As(III) were found to depend heavily on pH buffer type and concentration. The classic formulation of Fe(II) oxidation by oxygen, involving four single-electron transfers, was reviewed and found to be inadequate for explaining observed oxidation of Fe(II) and As(III). Widely cited rate constants for Fe(II) oxygenation originate from experiments conducted in carbonate buffer, and do not match observations made in phosphate, MES, or HEPES systems. In phosphate buffer, Fe(II) oxidation is rapid and dependent on phosphate concentration. In MES and HEPES buffers, Fe(II) oxidation is much slower due to the lack of labile ferrous iron species. Oxygenation of Fe(II) appears to proceed through different mechanisms in phosphate and MES or HEPES systems. In both cases, reactive intermediary species are produced which can oxidize As(III). These oxidants are not the hydroxyl radical, but may be Fe(IV) species. (C) 2007 Elsevier Ltd. All rights reserved.
引用
收藏
页码:517 / 525
页数:9
相关论文
共 26 条
[1]   Natural attenuation of TCE, As, Hg linked to the heterogeneous oxidation of Fe(II): an AFM study [J].
Charlet, L ;
Bosbach, D ;
Peretyashko, T .
CHEMICAL GEOLOGY, 2002, 190 (1-4) :303-319
[2]   THE KINETICS OF THE OXYGENATION OF FERROUS IRON IN PHOSPHORIC ACID SOLUTION [J].
CHER, M ;
DAVIDSON, N .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1955, 77 (03) :793-798
[3]   ARSENIC SPECIES AS AN INDICATOR OF REDOX CONDITIONS IN GROUNDWATER [J].
CHERRY, JA ;
SHAIKH, AU ;
TALLMAN, DE ;
NICHOLSON, RV .
JOURNAL OF HYDROLOGY, 1979, 43 (1-4) :373-392
[4]  
DAVISON W, 1983, GEOCHIM COSMOCHIM AC, V47, P67, DOI 10.1016/0016-7037(83)90091-1
[5]   SEPARATION OF ARSENIC(III) AND ARSENIC(V) IN GROUND WATERS BY ION-EXCHANGE [J].
FICKLIN, WH .
TALANTA, 1983, 30 (05) :371-373
[6]   CHARACTERIZATION AND APPLICATION OF FERROZINE IRON REAGENT AS A FERROUS IRON INDICATOR [J].
GIBBS, CR .
ANALYTICAL CHEMISTRY, 1976, 48 (08) :1197-1201
[7]   HYDROGEN ION BUFFERS FOR BIOLOGICAL RESEARCH [J].
GOOD, NE ;
WINGET, GD ;
WINTER, W ;
CONNOLLY, TN ;
IZAWA, S ;
SINGH, RMM .
BIOCHEMISTRY, 1966, 5 (02) :467-&
[8]   Iron-catalyzed oxidation of arsenic(III) by oxygen and by hydrogen peroxide: pH-dependent formation of oxidants in the Fenton reaction [J].
Hug, SJ ;
Leupin, O .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2003, 37 (12) :2734-2742
[9]   Solar oxidation and removal of arsenic at circumneutral pH in iron containing waters [J].
Hug, SJ ;
Canonica, L ;
Wegelin, M ;
Gechter, D ;
Von Gunten, U .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2001, 35 (10) :2114-2121
[10]   Solubility of symplesite (ferrous arsenate): Implications for reduced groundwaters and other geochemical environments [J].
Johnston, Richard B. ;
Singer, Philip C. .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 2007, 71 (01) :101-107