McDowell Sean A C, Joseph Jerelle A
Department of Biological and Chemical Sciences, The University of the West Indies, Cave Hill Campus, Barbados.
Phys Chem Chem Phys. 2014 Jun 14;16(22):10854-60. doi: 10.1039/c4cp01074d.
A computational study of ionic X···AH3-Y complexes (X = F(-), Cl(-), Br(-), Li(+), Be(2+); A = C, Si, Ge; Y = F, Cl, Br) predicted optimized structures which are held together by a combination of attractive forces, including ion-dipole and ion-σ-hole electrostatic interactions, and polarization forces. The trends (with variation in the halogen Y) for selected properties were rationalized by considering the electron density shifts due to the ion's electric field. Although it has been found previously that the trends for binding energies in neutral complexes follow the sigma-hole strength, the present study found that the dependence on the dipole polarizability of the A-Y bond can explain the trends for binding energies in these more strongly bound ionic complexes.
对离子型X···AH3 - Y配合物(X = F(-)、Cl(-)、Br(-)、Li(+)、Be(2+);A = C、Si、Ge;Y = F、Cl、Br)的一项计算研究预测了通过包括离子 - 偶极和离子 - σ空穴静电相互作用以及极化力在内的吸引力组合维系在一起的优化结构。通过考虑由于离子电场导致的电子密度转移,合理化了所选性质(随卤素Y变化)的趋势。尽管先前已发现中性配合物中结合能的趋势遵循σ空穴强度,但本研究发现对A - Y键偶极极化率的依赖性可以解释这些结合更强的离子型配合物中结合能的趋势。