Intercalation and co-ordination of ammonia and 1,2-diaminoethane into cobalt(II)-, nickel(II)-, copper(II)-, and vanadium(IV)-exchanged α-tin phosphate
- 1 January 1990
- journal article
- research article
- Published by Royal Society of Chemistry (RSC) in J. Chem. Soc., Dalton Trans.
- No. 4,p. 1183-1190
- https://doi.org/10.1039/dt9900001183
Abstract
The reactions of gaseous ammonia and 1,2-diaminoethane (en) with α-SnM(PO4)2·H2O (M = Co2+, Ni2+, Cu2+, or VO2+) have been investigated. Reactions occur with retention of the layered phosphate structure, the NH3-containing materials giving rise to an interlayer separation of 10.0 ± 0.05 Å. Co-ordination of NH3 occurs in all cases except for VO2+(as deduced from electronic absorption spectra); Co2+ is present in a tetrahedral, probably CoN3O, environment not found in classical co-ordination chemistry, presumably as a consequence of the restricted space available in the interlayer. Ammonia co-ordinates to Ni2+ to give a cis-octahedral NiN3O3 environment and for Cu2+ a tetragonal octahedral environment, probably CuN2O2O′2. An extensive surface and interlayer complex chemistry is displayed by low (2%) loaded Cu2+-exchanged materials, for which e.s.r. studies have been made. The layer structure is retained on heating to 110 °C, stability to loss of ammonia being in the order: Cu2+ > Co2+ > Ni2+, with the greatest change in geometry for the partially dehydrated products occurring in the case of Ni2+ which adopts a five-co-ordinate environment. 1,2-Diaminoethane co-ordinates to both Cu2+ and Co2+, although only as a monodentate ligand; it does not appear to co-ordinate to either Ni2+ or VO2+, instead showing a tendency to hydrogen-bond to phosphate groups in the interlayer.Keywords
This publication has 13 references indexed in Scilit:
- The nephelauxetic effect calculation and accuracy of the interelectronic repulsion parameters I. Cubic high-spin d 2, d 3, d 7, and d 8 systemsPublished by Springer Nature ,2008
- Pillar chemistry. Part 5. Intercalation of 2,2′-bipyridine, 1,10-phenanthroline, and 2,9-dimethyl-1,10-phenanthroline into γ-zirconium phosphate and formation of interlayer copper(II) complexesJ. Chem. Soc., Dalton Trans., 1990
- Pillar chemistry. Part 4. Palladium(II)–2,2′-bipyridyl, –1,10-phenanthroline, and –2,9-dimethyl-1,10-phenanthroline complex pillars in α-zirconium phosphateJ. Chem. Soc., Dalton Trans., 1988
- Exchange of first row transition metal ions with n-butylamine intercalate of tin(IV) hydrogenphosphateMaterials Research Bulletin, 1985
- Complexes and cations supported on the surface and between the layers of zirconium phosphate. 1. Copper(II) and its ammonia complexesInorganic Chemistry, 1982
- Zirconium phosphates partially exchanged with transition-metal ions: characterisation and stereochemical changes induced by heat treatmentJ. Chem. Soc., Dalton Trans., 1981
- Complexes with sulphur and selenium donor ligands. Part 8. Some 4-phenylthiosemicarbazone complexes of cobalt(II) and the crystal structure of bis(acetone 4-phenylthiosemicarbazone)cobalt(II) bromide (green form)J. Chem. Soc., Dalton Trans., 1978
- Mechanism of ion exchange in zirconium phosphates. 20. Refinement of the crystal structure of .alpha.-zirconium phosphateInorganic Chemistry, 1977
- Crystal and molecular structure of aquobis(ethylenediamine)(tetrafluoroborato)nickel(II) tetrafluoroborate. A cis-octahedral nickel(II) complex with a co-ordinated tetrafluoroborate ionJ. Chem. Soc., Dalton Trans., 1972
- The assignment of infra-red absorption bands to fundamental vibrations in some metal-ethylenediamine complexesSpectrochimica Acta, 1961