Laboratory of Characterizations, Applications and Modeling of Materials (LR18ES08), Department of Chemistry, University of Tunis El Manar, Tunis, Tunisia.
Departamento de Química Física, Facultad de Química, Universidad de Sevilla, Sevilla, Spain.
J Comput Chem. 2023 Jun 5;44(15):1426-1436. doi: 10.1002/jcc.27098. Epub 2023 Mar 11.
Recently, halogen bonding (XB) has received increased attention as a new type of non-covalent interaction widely present in nature. In this work, quantum chemical calculations at DFT level have been carried out to investigate halogen bonding interactions between CO (n = 1 or 2) and dihalogen molecules XY (X = F, Cl, Br, I and Y = Cl, Br, I). Highly accurate all-electron data, estimated by CCSD(T) calculations, were used to benchmark the different levels of computational methods with the objective of finding the best accuracy/computational cost. Molecular electrostatic potential, interaction energy values, charge transfer, UV spectra, and natural bond orbital (NBO) analysis were determined to better understand the nature of the XB interaction. Density of states (DOS) and projected DOS were also computed. Hence, according to these results, the magnitude of the halogen bonding is affected by the halogen polarizability and electronegativity, where for the more polarizable and less electronegative halogen atoms, the σ-hole is bigger. Furthermore, for the halogen-bonded complexes involving CO and XY, the OC∙∙∙XY interaction is stronger than the CO∙∙∙XY interaction. Thus, the results presented here can establish fundamental characteristics of halogen bonding in media, which would be very helpful for applying this noncovalent interaction for the sustainable capture of carbon oxides.
最近,卤键(XB)作为一种广泛存在于自然界中的新型非共价相互作用受到了越来越多的关注。在这项工作中,我们进行了密度泛函理论(DFT)水平的量子化学计算,以研究 CO(n = 1 或 2)和二卤分子 XY(X = F、Cl、Br、I 和 Y = Cl、Br、I)之间的卤键相互作用。使用 CCSD(T)计算估算的高精度全电子数据来基准化不同计算方法的水平,目的是找到最佳的准确性/计算成本。确定了分子静电势、相互作用能值、电荷转移、紫外光谱和自然键轨道(NBO)分析,以更好地理解 XB 相互作用的性质。还计算了态密度(DOS)和投影态密度。因此,根据这些结果,卤键的大小受卤素极化率和电负性的影响,对于更具极化率和更低电负性的卤素原子,σ-hole 更大。此外,对于涉及 CO 和 XY 的卤键配合物,OC∙∙∙XY 相互作用比 CO∙∙∙XY 相互作用更强。因此,这里呈现的结果可以确定卤键在介质中的基本特征,这对于应用这种非共价相互作用来可持续捕获二氧化碳将非常有帮助。