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Adsorption Properties of Montmorillonite and Synthetic Saponite as Packing Materials in Liquid-Column Chromatography

Published online by Cambridge University Press:  02 April 2024

Yuji Nakamura
Affiliation:
Department of Chemistry, University of Tokyo, Komaba Meguro-ku, Tokyo 153, Japan
Akihiko Yamagishi
Affiliation:
Department of Chemistry, University of Tokyo, Komaba Meguro-ku, Tokyo 153, Japan
Toschitake Iwamoto
Affiliation:
Department of Chemistry, University of Tokyo, Komaba Meguro-ku, Tokyo 153, Japan
Makoto Koga
Affiliation:
The Research Institute of Kunimine Ind. Co., Kuroiso-shi 325, Japan

Abstract

The adsorption of tris(1,10-phenanthroline)-ruthenium(II) (Ru(phen)32+) by two kinds of colloidally dispersed clays, sodium montmorillonite and synthetic saponite, was studied by spectrophotometric and electron-optical methods. Montmorillonite adsorbed this complex stronger than saponite. The electronic spectrum measurements suggested that the electronic states of the complex were more perturbed on adsorption by montmorillonite than by saponite. High-performance liquid chromatography was attempted on an ion-exchanged adduct of optically active Ru(phen)32+ and these clays. 1,1′-Binaphthol was eluted with a 1:1 (v/v) water-methanol mixture as an eluent. The compound was resolved with a separation factor of 15 and 1.4 on the saponite and montmorillonite columns, respectively. If tris(acetylacetonato)-chromium(III) was eluted with water, the compound was resolved with separation factors of 1.9 and 11 on the saponite and montmorillonite columns, respectively. These separation tendencies were probably due to the difference in the external surface area and the density of the bound chelates.

Type
Research Article
Copyright
Copyright © 1988, The Clay Minerals Society

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References

Bailey, S. W., Brindley, G. W. and Brown, G., 1984 Structure of layer silicates Crystal Structures of Clay Minerals and their X-ray Identification London Mineralogical Society 1124.Google Scholar
Collman, J. P., 1965 Reactionen der Metall-acetylaceto-nate Angew. Chem. 77 154160.CrossRefGoogle Scholar
Dourlent, M., Hogrel, J. F. and Helene, C., 1974 Aniso-tropy effects in temperature-jump relaxation studies on solutions containing linear polymers J. Amer. Chem. Soc. 96 33983403.CrossRefGoogle Scholar
Drake, A. F., Gould, J. M., Mason, S. F., Rosini, C. and Woodley, F. J., 1983 The optical resolution of tris(pentane-2,4-dionato)metal(III) complexes Polyhedron 2 539541.CrossRefGoogle Scholar
Hanazaki, J. and Akimoto, H., 1972 Optical rotatory power of 2,2’-dihydroxy-1,1’-binaphthyl and related compounds J. Amer. Chem. Soc. 94 41024106.CrossRefGoogle Scholar
Koga, K., 1985 Technical Bulletin of Kunimine Industry Corporation Tokyo Kunimine Industry Corporation 114.Google Scholar
McCaffery, A. J., Mason, S. F. and Norman, B. J. (1969) Optical rotatory power of co-ordination compounds. Part XII. Spectroscopic and configurational assignments for the tris-bipyridyl and -phenanthroline complexes of the di- and trivalent iron-group metal ions: J Chem. Soc., 14281441.Google Scholar
Oakley, D. M. and Jennings, B. R., 1982 Clay particle sizing of electrically induced birefringence Clay Miner. 17 313325.CrossRefGoogle Scholar
Yamagishi, A., 1982 Racemic adsorption of tris(1,10-phen-anthrolineion(II)) on a colloidally dispersed sodium mont-morillonite J. Phys. Chem. 86 24742479.CrossRefGoogle Scholar
Yamagishi, A. (1983) Chirality recognition of a clay surface modified by an optically active metal chelate: J. Chem. Soc., Dalton Trans., 679681.CrossRefGoogle Scholar
Yamagishi, A., 1984 Electric dichroism evidence for stereo-specific binding of optically active tris-chelated complexes to DNA J. Phys. Chem. 88 57095713.CrossRefGoogle Scholar
Yamagishi, A., 1985 Clay column chromatography for optical resolution: Resolution of aromatic compounds on a lambda-Ru(phen)3 2+ montmorillonite J. Amer. Chem. Soc. 107 732734.CrossRefGoogle Scholar