Lo Rabindranath, Fanfrlík Jindřich, Lepšík Martin, Hobza Pavel
Institute of Organic Chemistry and Biochemistry (IOCB) and Gilead Sciences and IOCB Research Center, Academy of Sciences of the Czech Republic, v.v.i., Flemingovo nám. 2, 16610 Prague 6, Czech Republic.
Phys Chem Chem Phys. 2015 Aug 28;17(32):20814-21. doi: 10.1039/c5cp03617h. Epub 2015 Jul 27.
The calculated properties of substituted carboranes such as dipole moment, polarisability, the magnitude of the σ-hole and the desolvation free energy are compared with these properties in comparable aromatic and cyclic aliphatic organic compounds. Dispersion and charge transfer energies are similar. However, the predicted strength of the halogen bonds with the same electron donor (based on the magnitude of the σ-hole) is larger for neutral C-vertex halogen-substituted carboranes than for their organic counterparts. Furthermore, the desolvation penalties of substituted carboranes are smaller than those of the corresponding organic compounds, which should further strengthen the halogen bonds of the former in the solvent. It is predicted that substituted carboranes have the potential to form stronger halogen bonds than comparable aromatic hydrocarbons, which will be even more pronounced in the medium. This theoretical study thus lays ground for the rational engineering of halogen bonding in inorganic crystals as well as in biomolecular complexes.
将取代碳硼烷的计算性质,如偶极矩、极化率、σ-空穴大小和去溶剂化自由能,与类似的芳香族和环状脂肪族有机化合物的这些性质进行了比较。色散能和电荷转移能相似。然而,对于中性C顶点卤素取代的碳硼烷,与相同电子供体形成的卤素键的预测强度(基于σ-空穴大小)比其有机对应物更大。此外,取代碳硼烷的去溶剂化代价小于相应有机化合物的去溶剂化代价,这应该会进一步增强前者在溶剂中的卤素键。据预测,取代碳硼烷比类似的芳烃有形成更强卤素键的潜力,在介质中这种情况会更明显。因此,这项理论研究为无机晶体以及生物分子复合物中卤素键的合理设计奠定了基础。