Department of Theoretical Chemistry Amsterdam Institute for Molecular and Life Sciences (AIMMS), Amsterdam Center for Multiscale Modeling (ACMM), Vrije Universiteit Amsterdam, De Boelelaan 1083, 1081 HV, Amsterdam, The Netherlands.
Department of Chemistry Institute of Natural Sciences, Federal University of Lavras, CEP 37200-900, Lavras-MG, Brazil.
ChemistryOpen. 2021 Apr;10(4):391-401. doi: 10.1002/open.202000323. Epub 2021 Feb 17.
We have quantum chemically analyzed the structure and stability of archetypal chalcogen-bonded model complexes D Ch⋅⋅⋅A (Ch = O, S, Se, Te; D, A = F, Cl, Br) using relativistic density functional theory at ZORA-M06/QZ4P. Our purpose is twofold: (i) to compute accurate trends in chalcogen-bond strength based on a set of consistent data; and (ii) to rationalize these trends in terms of detailed analyses of the bonding mechanism based on quantitative Kohn-Sham molecular orbital (KS-MO) theory in combination with a canonical energy decomposition analysis (EDA). At odds with the commonly accepted view of chalcogen bonding as a predominantly electrostatic phenomenon, we find that chalcogen bonds, just as hydrogen and halogen bonds, have a significant covalent character stemming from strong HOMO-LUMO interactions. Besides providing significantly to the bond strength, these orbital interactions are also manifested by the structural distortions they induce as well as the associated charge transfer from A to D Ch.
我们使用相对论密度泛函理论(ZORA-M06/QZ4P),对典型的硫属键合模型配合物 D Ch⋅⋅⋅A(Ch = O、S、Se、Te;D、A = F、Cl、Br)的结构和稳定性进行了量子化学分析。我们的目的有两个:(i)基于一组一致的数据计算硫属键强度的准确趋势;(ii)根据基于定量 Kohn-Sham 分子轨道(KS-MO)理论的详细键合机制分析以及典范能量分解分析(EDA),合理推断这些趋势。与普遍接受的将硫属键合视为主要静电现象的观点相反,我们发现硫属键合与氢键和卤键一样,具有显著的共价性质,源自于强 HOMO-LUMO 相互作用。除了显著增加键强度外,这些轨道相互作用还表现为它们诱导的结构变形以及从 A 到 D Ch 的相关电荷转移。