Octahedral and bicapped-tetrahedral silicon configurations in the solid state and their dynamic coexistence in solution

Inna Kalikhman, Boris Gostevskii, Mark Botoshansky, Menahem Kaftory, Claire A. Tessier, Matthew J. Panzner, Wiley J. Youngs, Daniel Kost

Research output: Contribution to journalArticlepeer-review

25 Scopus citations

Abstract

Hexacoordinate silicon bis chelates with the SiC 2O 2N 2 ligand framework have been prepared, with different nitrogen-donor ligands, NMe 2 and N=CMe 2. Crystal diffraction analyses revealed that the former type had a bicapped-tetrahedral geometry and the latter an octahedral molecular geometry in the solid state. The two N→Si dative bonds in the isopropylideneimino-coordinated compound are sufficiently strong to change silicon from its tetrahedral ground-state configuration to the higher energy octahedral configuration. In contrast, the weaker NMe 2 donor groups do not form strong enough bonds to cause this change, and as a result silicon remains tetrahedral and forms only substantially longer and weaker N→Si dative bonds (2.7-2.8 Å). Remote electron-releasing NMe 2 substituents on the chelate rings render the ligand NMe 2 groups stronger donors, resulting in reversal of the solid-state geometry back to octahedral. 29Si, 1H, and 13C NMR spectra at various temperatures provide evidence for the coexistence in equilibrium of the bicapped-tetrahedral and octahedral geometries in solution, with the octahedral to tetrahedral population ratio increasing as the temperature is decreased.

Original languageEnglish
Pages (from-to)1252-1258
Number of pages7
JournalOrganometallics
Volume25
Issue number5
DOIs
StatePublished - 27 Feb 2006

ASJC Scopus subject areas

  • Physical and Theoretical Chemistry
  • Organic Chemistry
  • Inorganic Chemistry

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