Hostname: page-component-77c89778f8-sh8wx Total loading time: 0 Render date: 2024-07-17T14:47:04.894Z Has data issue: false hasContentIssue false

Pillared Clays Prepared from the Reaction of Chromium Acetate with Montmorillonite

Published online by Cambridge University Press:  28 February 2024

Antonio Jimenez-Lopez
Affiliation:
Departamento de Química Inorgánica Cristalografía y Mineralogía, Facultad de Ciencias, Universidad de Málaga, Apartado 59, 29071, Málaga, España
Jose Maza-Rodriguez
Affiliation:
Departamento de Química Inorgánica Cristalografía y Mineralogía, Facultad de Ciencias, Universidad de Málaga, Apartado 59, 29071, Málaga, España
Pascual Olivera-Pastor
Affiliation:
Departamento de Química Inorgánica Cristalografía y Mineralogía, Facultad de Ciencias, Universidad de Málaga, Apartado 59, 29071, Málaga, España
Pedro Maireles-Torres
Affiliation:
Departamento de Química Inorgánica Cristalografía y Mineralogía, Facultad de Ciencias, Universidad de Málaga, Apartado 59, 29071, Málaga, España
Enrique Rodriguez-Castellon
Affiliation:
Departamento de Química Inorgánica Cristalografía y Mineralogía, Facultad de Ciencias, Universidad de Málaga, Apartado 59, 29071, Málaga, España

Abstract

Refluxing chromium (III) acetate with a Na+-montmorillonite suspension gives rise to the intercalation of linear Cr(III) polyhydroxo-acetate oligomers. Thermally stable chromia pillared mont-morillonite materials are obtained upon calcination under ammonia up to 625°C, and basal expansions up to 6 Å are maintained. The porous materials retain high surface areas (366–464 m2 g−1), a micropore volume of 0.1 cm3 g−1 and narrow pore size distributions centered between 7.5 and 12 Å. The most thermally stable materials in air were those prepared under ammonia at 625°C, containing NH4+ as the exchangeable ion.

Type
Research Article
Copyright
Copyright © 1993, The Clay Minerals Society

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

Adams, J. M., 1987 Synthetic organic chemistry using pillared cation-exchange acid-treated montmorillonite catalyst. A review App. Clay Sci. 2 309342 10.1016/0169-1317(87)90039-1.CrossRefGoogle Scholar
Bornholdt, K., Corker, J. M., Evans, J. and Rummey, J. M., 1991 EXAFS Studies of the Formation of Chromia Pillared Clay Catalysts Inorg. Chem. 30 24 10.1021/ic00001a001.CrossRefGoogle Scholar
Brindley, G. W. and Yamanaka, S., 1979 A study of hydroxychromium montmorillonites and the form of the hydroxychromium polymers Amer. Mineral 64 830835.Google Scholar
Carr, R. M., 1985 Hydration states of interlaminar chromium ions in montmorillonite Clays & Clay Minerals 3 357361 10.1346/CCMN.1985.0330413.CrossRefGoogle Scholar
Cotton, F. A. and Wilkinson, G., 1988 Advanced Inorganic Chemistry 5th ed. New York Wiley.Google Scholar
Cranston, R. W. and Inkley, F. A., 1957 The determination of pore structures from nitrogen adsorption isotherms Adv. Catal. 9 143156.CrossRefGoogle Scholar
Dubinin, M. M., (1966) Chemistry and Physics of Carbon, Walker, P. L., ed., Vol. 2, Marcel Dekker, New York.Google Scholar
Giles, C. H., McEwan, T. H., Nakhwa, S. N. and Smith, D., 1960 Studies in adsorption. Part XI. A system of classification of solution adsorption isotherms and its use in diagnosis of adsorption mechanisms and in measurement of specific surface area of solids J. Chem. Soc. 39733993.CrossRefGoogle Scholar
Gregg, S. J. and Sing, K. S. W., 1982 Adsorption, Surface Area and Porosity Orlando Academic Press.Google Scholar
Guerrero-Ruiz, A., Rodríguez-Ramos, I., Fierro, J L G Jiménez-López, A., Olivera-Pastor, P. and Maireles-Torres, P., 1992 Catalytic activity of layered α (Sn or Zr)-phosphates and chromia pillared derivatives for isopropyl alcohol decomposition Appl. Catal. 92 8192 10.1016/0926-860X(92)80308-Y.CrossRefGoogle Scholar
Maireles-Torres, P., Olivera-Pastor, P., Rodriguez-Castellón, E., Jiménez-López, A. and Tomlinson, A. A. G., 1991 Porous chromia pillared α-zirconium phosphate materials prepared via colloidal methods J. Mat. Chem. 1 5 739746 10.1039/JM9910100739.CrossRefGoogle Scholar
Maireles-Torres, P., Olivera-Pastor, P., Rodriguez-Castellón, E., Jiménez-López, A. and Tomlinson, A. A. G., 1991 Porous chromia-pillared α-tin phosphate materials J. Solid State Chem. 96 368380 10.1016/0022-4596(91)90203-T.CrossRefGoogle Scholar
Mitchell, I. V., 1990 Pillared Layered Structures, Current Trends and Applications London Elsevier Applied Science.Google Scholar
Monsted, L., Monsted, O. and Springborg, J., 1985 Evidence for “classical” hydroxo-bridges polymers in hydrolyzed hexaaquachromium Inorg. Chem. 24 34963498 10.1021/ic00215a042.CrossRefGoogle Scholar
Nakamoto, K., 1986 Infrared and Raman Spectra of Inorganic and Coordination Compounds 4th ed. New York Wiley.Google Scholar
Navarro-Martos, J., 1977 Estudio de la superficie de los geles de Al2O3-Cr2O3 en función de su composición Spain Universidad de Granada.Google Scholar
Pesquera, C., González, F., Benito, I., Mendioroz, S. and Pajares, J. A., 1991 Synthesis and characterization of pillared montmorillonite catalysts Appl. Catal. 69 97104 10.1016/S0166-9834(00)83294-7.CrossRefGoogle Scholar
Pinnavaia, T. J., Tzou, M. S. and Landau, S. D., 1985 New chromia pillared clay catalyst J. Am. Chem. Soc. 107 47834786 10.1021/ja00302a033.CrossRefGoogle Scholar
Poncelet, G., Schutz, A. and Setton, R., 1986 Pillared montmorillonite and beidellite. Acidity and catalytic properties Chemical Reactions in Organic and Inorganic Constrained Systems Dordrecht Riedel Publishing Co..Google Scholar
Powder Diffraction File, Joint Committee of Powder Diffraction Standards, Philadelphia 1967.Google Scholar
Stunzi, H. and Marty, W., 1983 Early stage of the hydrolysis of chromium(III) in aqueous solution. 1. Characterization of a tetrameric species Inorg. Chem. 22 21452150 10.1021/ic00157a012.CrossRefGoogle Scholar
Tzou, M. S., Pinnavaia, T. J. and Burch, R., 1988 Chromia pillared clays Pillared Clays: Catalysis Today Amsterdam Elsevier.Google Scholar
Vaughan, D. E. W. and Burch, R., 1988 Pillared clays, a historical perspective Pillared Clays: Catalysis Today Amsterdam Elsevier.Google Scholar