In Situ Stabilization of Soil Lead Using Phosphorus and Manganese Oxide
暂无分享,去创建一个
[1] G. Pierzynski,et al. In situ stabilization of soil lead using phosphorus. , 2001, Journal of environmental quality.
[2] J. Nriagu. Formation and Stability of Base Metal Phosphates in Soils and Sediments , 1984 .
[3] G. Neilsen,et al. Evaluation of organic wastes as soil amendments for cultivation of carrot and chard on irrigated sandy soils , 1998 .
[4] A. Putnis,et al. The dissolution of apatite in the presence of aqueous metal cations at pH 2–7 , 1998 .
[5] Weesner,et al. Binding Characteristics of Pb2+ on Anion-Modified and Pristine Hydrous Oxide Surfaces Studied by Electrophoretic Mobility and X-Ray Absorption Spectroscopy. , 1998, Journal of colloid and interface science.
[6] S. Kuo,et al. Effects of pH and phosphate on cadmium sorption by a hydrous ferric oxide , 1984 .
[7] J. Conca,et al. Effects of pH on Heavy Metal Sorption on Mineral Apatite , 1997 .
[8] M. Ruby,et al. In situ formation of lead phosphates in soils as a method to immobilize lead. , 1994, Environmental science & technology.
[9] A. Chang,et al. Cadmium Uptake for Swiss Chard Grown on Composted Sewage Sludge Treated Field Plots: Plateau or Time Bomb? , 1997 .
[10] G. Sposito,et al. Trace metal chemistry in arid-zone field soils amended with sewage sludge: I. Fractionation of Ni, Cu, Zn, Cd, and Pb in solid phases , 1982 .
[11] J. A. Ryan,et al. Effects of Aqueous Al, Cd, Cu, Fe(II), Ni, and Zn on Pb Immobilization by Hydroxyapatite. , 1994, Environmental science & technology.
[12] Scott D. Cunningham,et al. In-Place Inactivation of Pb in Pb-Contaminated Soils , 1997 .
[13] Michael V. Ruby,et al. Advances in evaluating the oral bioavailability of inorganics in soil for use in human health risk assessment , 1999 .
[14] Paul W. Schindler,et al. Ligand properties of surface silanol groups. I. surface complex formation with Fe3+, Cu2+, Cd2+, and Pb2+ , 1976 .
[15] V. Laperche,et al. Chemical and Mineralogical Characterizations of Pb in a Contaminated Soil: Reactions with Synthetic Apatite , 1996 .
[16] D. Kinniburgh,et al. Adsorption of alkaline earth transition and heavy metal cations by hydrous oxide gels of iron and aluminum , 1976 .
[17] Michael V. Ruby,et al. Estimation of lead and arsenic bioavailability using a physiologically based extraction test , 1996 .
[18] Q. Ma,et al. Lead immobilization from aqueous solutions and contaminated soils using phosphate rocks. , 1995, Environmental science & technology.
[19] R. Mckenzie. The adsorption of lead and other heavy metals on oxides of manganese and iron , 1980 .
[20] R. W. Sheard,et al. Comparison of Conventional and Automated Procedures for Nitrogen, Phosphorus, and Potassium Analysis of Plant Material Using a Single Digestion1 , 1967 .
[21] Iain Thornton,et al. Sources and pathways of environmental lead to children in a Derbyshire mining village , 1991, Environmental geochemistry and health.
[22] S. Caporn,et al. Remediation of contaminated land by formation of heavy metal phosphates , 1996 .
[23] Valérie Laperche,et al. Effect of Apatite Amendments on Plant Uptake of Lead from Contaminated Soil , 1997 .
[24] J. Quirk,et al. Zinc adsorption by goethite in the absence and presence of phosphate , 1977 .
[25] G. Pierzynski,et al. In situ stabilization of soil lead using phosphorus and manganese oxide: influence of plant growth. , 2000, Journal of environmental quality.
[26] Jerome O. Nriagu,et al. Lead orthophosphates—IV Formation and stability in the environment , 1974 .
[27] A. L. Page,et al. Long-term sludge applications on cadmium and zinc accumulation in Swiss chard and radish , 1987 .
[28] J. A. Ryan,et al. In situ lead immobilization by apatite , 1993 .
[29] R. Mckenzie. The effect of two manganese dioxides on the uptake of lead, cobalt, nickel, copper and zinc by subterranean clover , 1978 .