Abstract
Quantum mechanical calculations at the MP2/6-3 G(d) level are reported for the silaguanidinium cation Si(NH2)3 (1) and derivatives thereof. The equilibrium structure 1a has D3 symmetry with planar amino groups rotated out of the SiN3 plane by 19.6°. The Si N-bond length of 1a (1.658 Å) is intermediate between a single and a double bond. Isodesmic reactions show that the stabilization of the silylium cation 1a by the amino group (63.5 kcal mol-1) is about 40% of the resonance stabilization of the guanidinium cation (159.3 kcal mol-1), but 1a is clearly better stabilized than alkyl- substituted silylium cations. The electronic stabilization of 1a by the amino groups is also made obvious by the calculated complexation energy with one molecule of water. The calculated stabilization through complexation of water at HF/6-31 G(d) is markedly lower for Si(NH2)3- (H2O)+ (6) (28.8 kcal mol-1) than for SiMe3(H2O)+ (40.6 kcal mol-1). The tris- (dimethylamino) silylium cation Si(N-Me3)3/+ (8) is even more stable than 1a. The complexation energy of Si(NMe2)3-(H2O)+ (10) is only 17.3 kcal mol-1. IGLO calculations of the 29(Si NMR chemical shifts predict that 1a and 8 should not show the same extremely low shielding that is calculated for alkyl-substituted silylium ions. The calculated 29Si resonances for 8 are in reasonable agreement with the experimental NMR spectrum of (Me2N)3SiB(C6F5)4. AM 1 calculations predict that the substituted tripyrrolidino silylium cation 12 would be an even better candidate for a stable tricoordinate silylium cation in condensed phases. One of the pyrrolidine rings of 12 has tert-butyl groups in the 2 and 5 positions, which serve as a steric fence around the silicon atom.
Original language | English |
---|---|
Pages (from-to) | 869-876 |
Number of pages | 8 |
Journal | Angewandte Chemie - International Edition |
Volume | 35 |
Issue number | 13-14 |
State | Published - 1996 |
Externally published | Yes |
Keywords
- ab initio calculations
- silaguanidinium cations
- silylium cations