A methodological approach for the identification of arsenic bearing phases in polluted soils

被引:123
作者
Matera, V
Le Hécho, I
Laboudigue, A
Thomas, P
Tellier, S
Astruc, M
机构
[1] Univ Pau & Pays Adour, CNRS, LCABIE, UMR 5034, F-64053 Pau 9, France
[2] CNRSSP, F-59500 Douai, France
关键词
arsenic; speciation; soil; bearing phases; iron;
D O I
10.1016/S0269-7491(03)00146-5
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A methodological approach is used to characterize arsenic pollution in three soils and to determine arsenic speciation and association with solid phases in three polluted soils. HPLC-ICP-MS was used for arsenic speciation analysis, SEM-EDS and XRD for physical characterization of arsenic pollution, and sequential chemical extractions to identify arsenic distribution. Arsenic was concentrated in the finest size fractions also enriched in iron and aluminium. Total arsenic concentrations in soils are close to 1%. Arsenic was mainly present as arsenate, representing more than 90% of total arsenic. No crystallised arsenic minerals were detected by XRD analysis. SEM-EDS observations indicated arsenic/iron associations. Modified Tessier's procedure showed that arsenic was mainly extracted from amorphous iron oxide phase. The results of this methodological approach lead to predict the formation of iron arsenates in the case of one of the studied soils while arsenic sorption on iron amorphous (hydr)oxides seemed to be the determinant in the two other soils. (C) 2003 Elsevier Ltd. All rights reserved.
引用
收藏
页码:51 / 64
页数:14
相关论文
共 60 条
[1]   EFFECTS OF ABANDONED GOLD MINE TAILINGS ON THE ARSENIC CONCENTRATIONS IN WATER AND SEDIMENTS OF JACK OF CLUBS LAKE, BC [J].
AZCUE, JM ;
MUDROCH, A ;
ROSA, F ;
HALL, GEM .
ENVIRONMENTAL TECHNOLOGY, 1994, 15 (07) :669-678
[2]  
Backer D.E., 1975, ADV AGRON, V27, P305
[3]   THERMODYNAMICS APPLIED TO THE STUDY OF THE LIMITS OF SEQUENTIAL EXTRACTION PROCEDURES USED FOR THE SPECIATION OF TRACE-ELEMENTS IN SEDIMENTS AND SOILS [J].
BERMOND, AP .
ENVIRONMENTAL TECHNOLOGY, 1992, 13 (12) :1175-1179
[4]   ARSENIC IN CONTAMINATED SOIL AND RIVER SEDIMENT [J].
BOMBACH, G ;
PIERRA, A ;
KLEMM, W .
FRESENIUS JOURNAL OF ANALYTICAL CHEMISTRY, 1994, 350 (1-2) :49-53
[5]  
BOURRELIER PH, 1998, 42 AC SCI
[6]   SORPTION OF ARSENIC BY IRON-OXIDES AND OXYHYDROXIDES IN SOILS [J].
BOWELL, RJ .
APPLIED GEOCHEMISTRY, 1994, 9 (03) :279-286
[7]   LE-CHATELET GOLD-BEARING ARSENOPYRITE DEPOSIT, MASSIF-CENTRAL, FRANCE - MINERALOGY AND GEOCHEMISTRY APPLIED TO PROSPECTING [J].
BRAUX, C ;
PIANTONE, P ;
ZEEGERS, H ;
BONNEMAISON, M ;
PREVOT, JC .
APPLIED GEOCHEMISTRY, 1993, 8 (04) :339-356
[8]  
CASIOT C, 1999, SPECTRA ANAL, V206, P17
[9]   Mineralogic constraints on the bioavailability of arsenic in smelter-impacted soils [J].
Davis, A ;
Ruby, MV ;
Bloom, M ;
Schoof, R ;
Freeman, G ;
Bergstom, PD .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1996, 30 (02) :392-399
[10]   Distribution of arsenic and nickel in uranium mill tailings, Rabbit Lake, Saskatchewan, Canada [J].
Donahue, R ;
Hendry, MJ ;
Landine, P .
APPLIED GEOCHEMISTRY, 2000, 15 (08) :1097-1119