Accurate determination of Fe(II) concentrations in the presence of a very high soluble Fe(III) background

被引:30
作者
Gendel, Youri [1 ]
Lahav, Ori [1 ]
机构
[1] Technion Israel Inst Technol, Fac Civil & Environm Engn, IL-32000 Haifa, Israel
关键词
D O I
10.1016/j.apgeochem.2008.03.016
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Analytical methods used for determining dissolved Fe(II) often yield inaccurate results in the presence of high Fe(III) concentrations. Accurate analysis of Fe(II) in solution when it is less than 1% of the total dissolved Fe concentration (Fe-T) is sometimes required in both geochemical and environmental studies. For example, such analysis is imperative for obtaining the ratio Fe(II)/Fe(III) in rocks, soils and sediments, for determining the kinetic constants of Fe(II) oxidation in chemical or biochemical systems operating at low pH, and is also important in environmental engineering projects, e.g. for proper control of the regeneration step (oxidation of Fe(II) into Fe(III)) applied in ferric-based gas desulphurization processes. In this work a method capable of yielding accurate Fe(II) concentrations at Fe(II) to Fer ratios as low as 0.05% is presented. The method is based on a pretreatment procedure designed to separate Fe(II) species from Fe(Ill) species in solution without changing the original Fe(II) concentration. Once separated, a modified phenanthroline method is used to determine the Fe(II) concentration, in the virtual absence of Fe(III) species. The pretreatment procedure consists of pH elevation to pH 4.2-4.65 using NaHCO3 under N-2(g) environment, followed by filtration of the solid ferric oxides formed, and subsequent acidification of the Fe(II)-containing filtrate. Accuracy of Fe(II) analyses obtained for samples (Fe(II)/Fe-T ratios between 2% and 0.05%) to which the described pretreatment was applied was >95%. Elevating pH to above 4.65 during pretreatment was shown to result in a higher error in Fe(II) determination, likely resulting from adsorption of Fe(II) species and their removal from solution with the ferric oxide precipitate. (c) 2008 Elsevier Ltd. All rights reserved.
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收藏
页码:2123 / 2129
页数:7
相关论文
共 30 条
[1]   Solvent sublation and spectrometric determination of iron(II) and total iron using 3-(2-pyridyl)-5,6-bis(4-phenylsulfonic acid)1,2,4-triazine and tetrabutylammonium bromide [J].
Aki, Magda Ali ;
Mori, Yoshihito ;
Sawada, Kiyoshi .
ANALYTICAL SCIENCES, 2006, 22 (09) :1169-1174
[2]  
ASAI S, 1989, AICHE J, V35, P1271
[3]  
Cornell R.M., 2003, IRON OXIDES
[4]   NONREVERSIBLE ADSORPTION OF DIVALENT METAL-IONS (MN-II, CO-II NI-II CU-II AND PB-II) ONTO GOETHITE - EFFECTS OF ACIDIFICATION, FE-II ADDITION, AND PICOLINIC-ACID ADDITION [J].
COUGHLIN, BR ;
STONE, AT .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1995, 29 (09) :2445-2455
[5]   Kinetics of the reactive absorption of hydrogen sulfide into aqueous ferric sulfate solutions [J].
Ebrahimi, S ;
Kleerebezem, R ;
van Loosdrecht, MCM ;
Heijnen, JJ .
CHEMICAL ENGINEERING SCIENCE, 2003, 58 (02) :417-427
[6]   SUPPRESSION OF IRON(III) INTERFERENCE IN DETERMINATION OF IRON(II) IN WATER BY 1,10-PHENANTHROLINE METHOD [J].
FADRUS, H ;
MALY, J .
ANALYST, 1975, 100 (1193) :549-554
[7]   Speciation of Fe(II) and Fe(III) by the modified ferrozine method, FIA-spectrophotometry, and flame AAS after cloud-point extraction [J].
Giokas, DL ;
Paleologos, EK ;
Karayannis, MI .
ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2002, 373 (4-5) :237-243
[8]   Kinetic study of biological ferrous sulphate oxidation by iron-oxidising bacteria in continuous stirred tank and packed bed bioreactors [J].
Gómez, JM ;
Cantero, D .
PROCESS BIOCHEMISTRY, 2003, 38 (06) :867-875
[9]  
HERRERA L, 1989, J CHEM TECHNOL BIOT, V44, P171
[10]   REDOX STATE OF IRON IN THE OFFSHORE WATERS OF PERU [J].
HONG, HS ;
KESTER, DR .
LIMNOLOGY AND OCEANOGRAPHY, 1986, 31 (03) :512-524