A new cation-exchange method for accurate field speciation of hexavalent chromium

被引:58
作者
Ball, JW [1 ]
McCleskey, RB [1 ]
机构
[1] US Geol Survey, Div Water Resources, Boulder, CO 80303 USA
关键词
hexavalent chromium; redox species determinations; cation exchange; analytical methods;
D O I
10.1016/S0039-9140(03)00282-0
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
A new method for field speciation of Cr(VI) has been developed to meet present stringent regulatory standards and to overcome the limitations of existing methods. The method consists of passing a water sample through strong acid cation-exchange resin at the field site, where Cr(III) is retained while Cr(VI) passes into the effluent and is preserved for later determination. The method is simple, rapid, portable, and accurate, and makes use of readily available, inexpensive materials. Cr(VI) concentrations are determined later in the laboratory using any elemental analysis instrument sufficiently sensitive to measure the Cr(VI) concentrations of interest. The new method allows measurement of Cr(VI) concentrations as low as 0.05 mug l(-1), storage of samples for at least several weeks prior to analysis, and use of readily available analytical instrumentation. Cr(VI) can be separated from Cr(III) between pH 2 and 11 at Cr(III)/ Cr(VI) concentration ratios as high as 1000. The new method has demonstrated excellent comparability with two commonly used methods, the Hach Company direct colorimetric method and USEPA method 218.6. The new method is superior to the Hach direct colorimetric method owing to its relative sensitivity and simplicity. The new method is superior to USEPA method 218.6 in the presence of Fe(II) concentrations up to 1 mg l(-1) and Fe(III) concentrations up to 10 mg l(-1). Time stability of preserved samples is a significant advantage over the 24-h time constraint specified for USEPA method 218.6. Published by Elsevier B.V.
引用
收藏
页码:305 / 313
页数:9
相关论文
共 15 条
[1]  
Arar E.J., 1991, 2186 US EPA
[2]   DETERMINATION OF DISSOLVED HEXAVALENT CHROMIUM IN INDUSTRIAL WASTE-WATER EFFLUENTS BY ION CHROMATOGRAPHY AND POSTCOLUMN DERIVATIZATION WITH DIPHENYLCARBAZIDE [J].
ARAR, EJ ;
PFAFF, JD .
JOURNAL OF CHROMATOGRAPHY, 1991, 546 (1-2) :335-340
[3]   SYNCHROTRON X-RAY MICROPROBE DETERMINATION OF CHROMATE CONTENT USING X-RAY-ABSORPTION NEAR-EDGE STRUCTURE [J].
BAJT, S ;
CLARK, SB ;
SUTTON, SR ;
RIVERS, ML ;
SMITH, JV .
ANALYTICAL CHEMISTRY, 1993, 65 (13) :1800-1804
[4]   Speciation of chromium by direct coupling of ion exchange chromatography with inductively coupled plasma mass spectrometry [J].
Barnowski, C ;
Jakubowski, N ;
Stuewer, D ;
Broekaert, JAC .
JOURNAL OF ANALYTICAL ATOMIC SPECTROMETRY, 1997, 12 (10) :1155-1161
[5]   Determination of chromium species in water samples by liquid chromatography-inductively coupled plasma-dynamic reaction cell-mass spectrometry [J].
Chang, YL ;
Jiang, SJ .
JOURNAL OF ANALYTICAL ATOMIC SPECTROMETRY, 2001, 16 (08) :858-862
[6]  
DAUGHERTY ML, 1992, TOXICITY SUMMARY CHR, P26
[7]   Determination of trivalent and hexavalent chromium in waste water by flow injection chemiluminescence analysis [J].
Escobar, R ;
Lin, Q ;
Guiraum, A ;
DeLaRosa, FF .
INTERNATIONAL JOURNAL OF ENVIRONMENTAL ANALYTICAL CHEMISTRY, 1995, 61 (03) :169-175
[8]   Highly sensitive semi-quantitative field test for the determination of chromium (VI) in aqueous samples [J].
Frenzel, W .
FRESENIUS JOURNAL OF ANALYTICAL CHEMISTRY, 1998, 361 (08) :774-779
[9]   Determination of trace concentrations of hexavalent chromium [J].
Gardner, M ;
Comber, S .
ANALYST, 2002, 127 (01) :153-156
[10]   Determination of chromium(III) and chromium(VI) using suppressed ion chromatography inductively coupled plasma mass spectrometry [J].
Gürleyük, H ;
Wallschläger, D .
JOURNAL OF ANALYTICAL ATOMIC SPECTROMETRY, 2001, 16 (09) :926-930