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    Abstracting/Indexing   
      p-ISSN: 1735-1472
    
e-ISSN: 1735-2630
    
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Volume 1 (2004)
Sorption behavior of nine chromium (III) organic complexes in soil
Article 1: Volume 7, Number 1, Winter 2010, Pages 1-10 (10) XML PDF (880 K)
Authors
Z. Luo; A. Wadhawan; E. J. Bouwer
Abstract
SSorption data were obtained with a Matawan soil and the following chromium (III) organic complexes: chromium (III) ascorbate, chromium (III) glutamate, chromium (III) histidine, chromium (III) mandelate, chromium (III) citrate, chromium (III) cysteine, chromium (III) serine, chromium (III) pyruvate and chromium (III) oxalate. The influence of pH (2-12), ionic strength (0.005-1 M) and concentration of sorbate (1-10 mg/L) on the extent of sorption was evaluated. The pH value did not influence the percent sorption at environmentally relevant pH 7. Ionic strength between 0.005 and 0.01 M KNO3 did not influence the sorption. Sorption and desorption data obtained at pH 7, 0.01 M KNO3 and 1-10 mg/L for each chromium (III) organic complex were analyzed using Freundlich and Langmuir models. The Freundlich model provided good fits for all of the chromium (III) organic complexes. Sorption data for chromium (III) glutamate, chromium (III) pyruvate, chromium (III) oxalate, chromium (III) cysteine, chromium (III) ascorbate and chromium (III) citrate were described well by the Langmuir model. Estimates for the saturated sorption capacities were 141, 70.9, 36.5, 35.5, 28.6 and 4.4 mg/g, respectively. It was not possible to desorb significant amounts of the previously sorbed chromium (III) organic complexes. At the same pH, ionic strength and solid:liquid ratio, the order of the observed sorption to the Matawan soil from highest to lowest was chromium (III) mandelate, chromium (III) glutamate, chromium (III) histidine, chromium (III) cysteine, chromium (III) serine, chromium (III) pyruvate, chromium (III) oxalate, chromium (III) ascorbate and chromium (III) citrate
Keywords
Chromium (III) ascorbate; Chromium (III) citrate; Chromium (III) cysteine; Chromium (III) histidine; Chromium (III) serine; Desorption; Freundlich isotherm
Main Subjects
Cr (III); Organic complexes in soil
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References
1. Adams, T. K.; Saydam, N.; Steiner, F.; Schaffner, W., (2002). Activation of gene expression by metal-responsive signal transduction pathways. J. H., Envion. Health Perspect., 5 (110), 813-817 (5 Pages)
2. Ahern, F.; Eckert, J. M.; Payne, N. C.; Williams, K. C., (1985). Speciation of chromium in sea water. Anal. Chim. Acta., 175, 147-151 (5 Pages), DOI: 10.1016/S0003-2670(00)82726-9. Abstract
3. Buerge-Weirich, D.; Behra, P.; Sigg, L., (2003). Adsorption of copper, nickel, and cadmium on goethite in the presence of organic ligands. Aquat. Geochem., 9 (2), 65-85 (21 Pages), DOI: 10.1023/B:AQUA.0000019455.82756.ac. Abstract | Full Text
4. Carbonaro, R.; Stone, A. T., (2005). Speciation of chromium (III) and cobalt (III) (amino) carboxylate complexes using capillary electrophoresis. Anal. Chem., 77 (1), 155-164 (10 Pages) Abstract | Full Text
5. Clescerl, L. S.; Greenberg, A. E.; Eaton, A. D., (1989). Standard methods for examination of water and wastewater. 17th. Ed., American Public Health Association Abstract
6. Costa, M., (2003). Potential hazards of hexavalent chromate in our drinking water. Toxicol. Appl. Pharma., 188 (1), 1-5 (5 Pages), DOI: 10.1016/S0041-008X(03)00011-5. Abstract | Full Text
7. Davis, A.; Kempton, J. H.; Nicholson, A.; Yare, B., (1994). Groundwater transport of arsenic and chromium at a historical tannery, Woburn, Massachusetts. U.S.A. Appl. Geochem., 9 (5), 569-582 (14 Pages) Abstract
8. Freundlich, H., (1926). Colloid and capillary chemistry. Methuen. London., , 397-414 (18 Pages) Abstract
9. Fukushima, M.; Nakayasu, K.; Tanaka, S.; Nakamura, H., (1995). Chromium (III) binding abilities of humic acids. Anal. Chim. Acta., 317 (1-3), 195-206 (12 Pages), DOI: 10.1016/0003-2670 (95)00410-6. Abstract | Full Text
10. Gaspar, A.; Buglyo, P., (2000). Separation and kinetic study of chromium (III) chlorocomplexes by capillary electrophoresis. Chromatographia., 51 (1), 143-147 (5 Pages), DOI: 10.1007/BF02492797. Abstract | Full Text
11. Ge, Y.; Hendershot, W., (2004). Evaluation of soil surface charge using the back-titration technique. Soil Sci. Soc. Am. J., 68, 82-88 (7 Pages) Abstract
12. Holdway, D. A., (1988). The toxicity of Cr to fish, in chromium in the natural and human environments. Nriagu, J. O.; Nieboer, E., Eds., John Wiley and Sons, Advances in Environmental Science and Technology Wiley-Interscience: New York., (2), 369-397 (29 Pages)
13. Howe, J. A.; Loeppe R. H.; DeRose, V. J.; Hunter, D. B.; Bertsch, P. M., (2003). Localization and speciation of chromium in subterranean clover using XRF, XANES and EPR Spectroscopy. Environ. Sci. Tech., 37 (18), 4091-4097 (7 Pages) Abstract
14. Huang, C.; Zhang, Q.; Li, J.; Shi, X.; Castranova, V.; Ju, G.; Costa, M.; Dong, Z., (2001). Involvement of Erks activation in cadmium-induced AP-1 transactivation in vitro and in vivo. Mol. Cell. Biochem., 222 (1-2), 141-147 (7 Pages), DOI: 10.1023/A:1017953927347. Abstract | Full Text
15. Icopini, G. A.; Long, D. T., (2002). Speciation of aqueous chromium by use of solid-phase extractions in the field. Environ. Sci. Tech., 36 (13), 2994-2999 (6 Pages) Abstract | Full Text
16. Kaczynski, S. E.; Kieber, R. J., (1994). Hydrophobic C18 bound organic complexes of chromium and their potential impact on the geochemistry of chromium in natural waters. Environ. Sci. Tech., 28 (5), 799-804 (6 Pages), DOI: 10.1021/es00054a009. Abstract | Full Text
17. Langmuir, I., (1918). The adsorption of gases on plane surface of glass, mica and platinum. J. Am. Chem. Soc., 40, 1361-1403 (43 Pages), DOI: 10.1021/ja02242a004. Abstract | Full Text
18. Mattuck, R.; Nikolaidis, N. P., (1996). Chromium mobility in freshwater wetlands. J. Contam. Hydrol., 23 (3), 213-232 (20 Pages), DOI: 10.1016/0169-7722(95)00097-6. Abstract | Full Text
19. Nakayama, E.; Kuwamoto, T.; Tokoro, H.; Fujinaga, T., (1981). Dissolved state of chromium in seawater.. Nature., 290, 768-770 (3 Pages), DOI: 10.1038/290768a0. Abstract | Full Text
20. Nieboer, E.; Jusys, A. A., (1988). Biological chemistry of Cr, in chromium in the natural and human environments. Nriagu, J. O.; Nieboer, E., Eds., John Wiley and Sons, Advances in Environmental Science and Technology ; Wiley-Interscience: New York., (20), 21-79 (59 Pages)
21. Ogundiran, O. O.; Afolabi, T. A., (2008). Assessment of the physicochemical parameters and heavy metals toxicity of leachates from municipal solid waste open dumpsite. Int. J. Environ. Sci. Tech., 5 (2), 243-250 (8 Pages)
22. Oshida, P. S.; Word, L. S.; Mearns, A. J., (1981). Effects of hexavalent and trivalent Cr on the reproduction of Neanthes arenaceodentata (polychaeta). Mar. Environ. Res., 5, 41-49 (9 Pages)
23. Pearson, R. G., (1963). Hard and soft acids and bases. J. Am. Chem. Soc., 85, 3533-3539 (7 Pages)
24. Petruzzelli, G.; Guidi, G.; Lubrano, L., (1985). Ionic strength effect on heavy metal adsorption by soil. Commun. Soil Sci. Plan., 16 (9), 971-986 (16 Pages), DOI: 10.1080/00103628509367659. Abstract | Full Text
25. Puzon, G. J.; Roberts, A. G.; Kramer, D. M.; Xun, L., (2005). Formation of soluble organo-Chromium (III) complexes after chromate reduction in the presence of cellular organics. Environ. Sci. Tech., 39 (8), 2811-2817 (7 Pages) Abstract
26. Puzon, G. J.; Tokala, R. K.; Zhang, H.; Yonge, D.; Peyton, B. M; Xun, L., (2008). Mobility and recalcitrance of organo–chromium (III) complexes,. Chemosphere., 70 (11), 2054-2059 (6 Pages), DOI: 10.1016/j.chemosphere.2007.09.010. Abstract | Full Text
27. Richard, F. C.; Bourg, A. C. M., (1991). Aqueous geochemistry of chromium: A review. Water Res., 25 (7), 807-816 (10 Pages) Abstract
28. Sass, B. M.; Rai, D., (1987). Solubility of amorphous chromium III-iron (III) hydroxide solid solutions. Inorg. Chem., 26 (14), 2228-2232 (5 Pages) Abstract | Full Text
29. Shah, B. A.; Shah, A. V.; Singh, R. R., (2009). Sorption isotherms and kinetics of chromium uptake from wastewater using natural sorbent material. Int. J. Environ. Sci. Tech., 6 (1), 77-90 (14 Pages) Abstract | Full Text
30. Shrestha, R.; Fischer, R.; Sillanpaa, M., (2007). Investigations on different positions of electrodes and their effects on the distribution of Cr at the water sediment interface. Int. J. Environ. Sci. Tech., 4 (4), 413-420 (8 Pages) Abstract | Full Text
31. Sivakumar, S.; Subbhuraam, C. V., (2005). Sivakumar, S.; Subbhuraam, C. V.,chromium (III) and chromium (VI) to the earthworm Eisenia fetida. Ecotox. Environ. Safe., 62 (1), 93-98 (6 Pages), DOI: 10.1016/j.ecoenv.2004.08.006. Abstract | Full Text
32. Stumm, W.; Morgan, J. J., (1996). Aquatic chemical equilibrium and rates in natural water. 3rd. Ed., John Wiley and Sons, Inc., New York, Wiley-Interscience, , 1022
33. Vitale, R. J.; Mussoline, G. R.; Rinehimer, K. A., (1997). Environmental monitoring of chromium in air, soil and water. Regul. Toxicol. Pharm., 26 (1-2), 80-85 (6 Pages), DOI: doi:10.1006/rtph.1997.1144. Abstract | Full Text
34. von Gunten, H. R.; Kull, T. P., (1986). Infiltration of inorganic compounds from the glatt river, switzerland, into a groundwater aquifer. Water Air Soil Poll., 29 (3), 333-346 (14 Pages), DOI: 10.1007/BF00158764. Abstract | Full Text
35. Walsh, A. R.; O’Halloran, J., (1996). Chromium speciation in tannery effluent-I, an assessment of techniques and the role of organic chromium (III) complexes. Water Res., 30 (10), 2393-2400 (8 Pages), DOI: 10.1016/0043-1354(96)00173-X. Abstract | Full Text
36. Walsh, A. R.; O’Halloran, J., (1997). The accumulation of chromium by mussels Mytilus edulis (L.) as a function of valency, solubility and ligation. Mar. Environ. Res., 43 (1-2), 41-53 (13 Pages), DOI: 10.1016/0141-1136(96)00001-3. Abstract | Full Text
37. Wang, W. X.; Griscom, S. B.; Fisher, N. S., (1997). Bioavailability of Cr (III) and Cr (VI) to marine mussels from solute and particulate pathways. Environ. Sci. Tech., 31 (2), 603-611 (9 Pages) Abstract | Full Text

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