Computational Chemistry Laboratory, Chemistry Department, Faculty of Science, Minia University, Minia 61519, Egypt.
School of Health Sciences, University of Kwa-Zulu-Natal, Westville, Durban 4000, South Africa.
Int J Mol Sci. 2022 Oct 27;23(21):13023. doi: 10.3390/ijms232113023.
The effects of Lewis basicity and acidity on σ-hole interactions were investigated using two sets of carbon-containing complexes. In Set I, the effect of Lewis basicity was studied by substituting the X/X atom(s) of the NC-CH-X and NCX Lewis bases (LB) with F, Cl, Br, or I. In Set II, the W-C-F and F-C-X (where X and W = F, Cl, Br, and I) molecules were utilized as Lewis acid (LA) centers. Concerning the Lewis basicity effect, higher negative interaction energies () were observed for the F-C-F∙∙∙NC-CH-X complexes compared with the F-C-F∙∙∙NCX analogs. Moreover, significant was recorded for Set I complexes, along with decreasing the electron-withdrawing power of the X/X atom(s). Among Set I complexes, the highest negative was ascribed to the F-C-F∙∙∙NC-CH-I complex with a value of -1.23 kcal/mol. For Set II complexes, values of F-C-X bearing complexes were noted within the -1.05 to -2.08 kcal/mol scope, while they ranged from -0.82 to -1.20 kcal/mol for the W-C-F analogs. However, quantities exhibited higher values in the case of W-C-F molecules compared with F-C-X; preferable negative were ascribed to the F-C-X bearing complexes. These findings were delineated as a consequence of the promoted contributions of the X substituents. Dispersion forces () were identified as the dominant forces for these interactions. The obtained results provide a foundation for fields such as crystal engineering and supramolecular chemistry studies that focus on understanding the characteristics of carbon-bearing complexes.
采用两套含碳配合物研究路易斯碱性和酸性对 σ-hole 相互作用的影响。在第一套体系中,通过用 F、Cl、Br 或 I 取代 NC-CH-X 和 NCX 路易斯碱(LB)的 X/X 原子,研究路易斯碱性的影响。在第二套体系中,采用 W-C-F 和 F-C-X(其中 X 和 W=F、Cl、Br 和 I)分子作为路易斯酸(LA)中心。关于路易斯碱性的影响,与 F-C-F∙∙∙NCX 类似物相比,F-C-F∙∙∙NC-CH-X 配合物的相互作用能()更高。此外,在第一套体系中观察到显著的,同时随着 X/X 原子的吸电子能力的降低而减小。在第一套体系中,F-C-F∙∙∙NC-CH-I 配合物的负相互作用能最高,为-1.23 kcal/mol。对于第二套体系,F-C-X 配合物的相互作用能在-1.05 到-2.08 kcal/mol 范围内,而 W-C-F 类似物的相互作用能在-0.82 到-1.20 kcal/mol 范围内。然而,W-C-F 分子的相互作用能具有更高的数值;负相互作用能更倾向于 F-C-X 配体。这些发现归因于 X 取代基促进的贡献。色散力()被认为是这些相互作用的主要作用力。所得结果为晶体工程和超分子化学等领域提供了基础,这些领域专注于理解含碳配合物的特性。