The Effect of Dissolved Ligands on the Sorption of Cu(II) by Ca-Montmorillonite

Cambridge University Press (CUP) - Tập 42 - Trang 148-160 - 1994
Markus Stadler1, Paul W. Schindler1
1Institute for Inorganic Chemistry, University of Berne, Berne, Switzerland

Tóm tắt

The effects of three organic ligands on the adsorption of copper on Ca-montmorillonite were studied. The results indicate that these effects include three different processes: Ethylenediamine promotes copper uptake by ion-exchange at low pH but tends to suppress adsorption at aluminol groups by ligand competition at high pH. The same mechanisms are operative for β-alanine; however, the uptake of Cu(β-ala)+ by ion-exchange is not promoted by the attached ligand. The influence of malonate includes both ligand competition and formation of ternary complexes. A quantitative interpretation based on the surface complexation model using the least-squares programs FITEQL (Westall, 1982) and GRFIT (Ludwig, 1992) is presented. The obtained equilibrium constants are listed in Tables 2b and 3.

Tài liệu tham khảo

Benson, L. V. (1982) A tabulation and evaluation of ion exchange data on smectites: Environ. Geol. 4, p. 23. Bjerrum, N. (1948) Bull. Soc. Chim. Belges 57, p. 432. Bodenheimer, W., Heller, L., Kirson, B., and Yariv, S. (1962) Organo-metallic clay complexes. Part II: Clav Miner. Bull. 5, p. 145. Bodenheimer, W., Kirson, B., and Yariv, S. (1963) Organometallic clay complexes. Part I: Israel J. Chem. 1, p. 69. Bodenheimer, W., Heller, L., and Yariv, S. (1966) Organo-metallic clay complexes. Part VII: Thermal analysis of montmorillonite-diamine and glycol complexes: Clay Miner. 6, p. 167. Cloos, P. and Laura, R. D. (1972) Adsorption of ethylenediamine (EDA) on montmorillonite saturated with different cations. II. Hydrogen- and ethylenediammonium-mont-morillonite protonation and hydrogen bonding: Clays & Clay Minerals 20, p. 259. Fletcher, P. and Sposito, G. (1989) The chemical modeling of clay/electrolyte interactions for montmorillonite: Clay Miner. 24, p. 375. Maes, A., Peigneur, P., and Cremers, A. (1978) Stability of metal uncharged ligand complexes in ion exchangers. Part 2. The copper+ethylenediamine complex in montmorillonite and sulphonic acid resin: J. Chem. Soc. Faradav Trans. I 74, p. 182. Martell, A. E. and Smith, R. M. (1976) Critical Stability Constants: Plenum Press, New York and London, 140 pp. Shaviv, A. and Mattigod, S. V. (1985) Cation exchange equilibria in soils expressed as cation-ligand complex formation: Soil Sci. Soc. Amer. J. 49, p. 569. Siffert, B. and Espinasse, P. (1980) Adsorption of organic diacids and sodium polyacrylate onto montmorillonite: Clays & Clay Minerals 28, p. 381. Sillèn, L. G. and Martell, A. E. (1964) Stability Constants of Metal-Ion Complexes, Section I: Inorganic Ligands: The Chemical Society, London, Special Publication No. 17, 125 pp. Schindler, P. W. (1990) Co-adsorption of Metal Ions and Organic Ligands: Formation of Ternary Surface Complexes: Mineral-Water Interface Geochemistry, Vol. 23, M. F. Hochella and A. F. White, eds., Mineralogical Society of America, Washington, D.C., p. 281. Schindler, P. W. and Stumm, W. (1987) The surface chemistry of oxides, hydroxides and oxide minerals: in Aquatic Surface Chemistry, W. Stumm, ed., Wiley Interscience, New York, p. 83. Stadler, M. and Schindler, P. W. (1993) Modeling of H+ and Cu2+ adsorption on Calcium-montmorillonite: Clays & Clay Minerals 41, 288–298. Tsunashima, A. and Hayashi, H. (1984) Adsorption of some amino acids by Ca-, Co-, and Cu-montmorillonite: Rep. Res. Inst. Underground Resources. Min. Coll., Akita Univ. 49, p. 53. Velghe, F., Schoonheydt, R. A., and Uytterhoeven, J. B. (1977) Spectroscopic characterization and thermal stability of copper(II) ethylenediamine complexes on solid surfaces. 2. montmorillonite: J. Phys. Chem. 81, p. 1187. Westall, J. C. (1982) A Program for the Determination of Chemical Equilibrium Constants from Experimental Data: User’s Guide version 1.2: Oregon State University, Corvallis, Oregon.