Ibrahim Mahmoud A A, Telb Ebtisam M Z
Computational Chemistry Laboratory, Chemistry Department, Faculty of Science, Minia University, Minia 61519, Egypt.
ACS Omega. 2020 Aug 19;5(34):21631-21640. doi: 10.1021/acsomega.0c02362. eCollection 2020 Sep 1.
The potentiality of sp-hybridized chalcogen-containing molecules to participate in lone-pair (lp) hole interactions was reported for the first time. lp hole interactions were characterized and compared to σ-hole ones for OF and SF molecules as a case study Various quantum mechanical calculations, including molecular electrostatic potential (MEP), maximum positive electrostatic potential ( ), point of charge (PoC), symmetry-adapted perturbation theory (SAPT), quantum theory of atoms in molecule (QTAIM), and reduced density gradient-noncovalent interaction (RDG-NCI) calculations, were carried out. The more significant findings to emerge from this study are the following: (i) the calculation was proved to be an unreliable method to determine the precise σ-hole and lp hole locations. (ii) The maximum positive electrostatic potential of the σ hole and lp hole was found to be at the F-Chal···PoC angle (θ) of 180° and at the centroid of XYlp plane, respectively. (iii) Lewis basicity has a significant effect on the strength of σ-hole and lp hole interactions. (iv) The studied molecules more favorably interact with Lewis bases via the σ hole compared to the lp hole, and (v) stabilization of the σ-hole and lp hole interactions stems from the electrostatic and dispersion forces, respectively.
首次报道了含sp杂化硫属元素的分子参与孤对(lp)空穴相互作用的可能性。作为一个案例研究,对OF和SF分子的lp空穴相互作用进行了表征,并与σ空穴相互作用进行了比较。进行了各种量子力学计算,包括分子静电势(MEP)、最大正静电势( )、电荷点(PoC)、对称适配微扰理论(SAPT)、分子中原子量子理论(QTAIM)和密度降低梯度-非共价相互作用(RDG-NCI)计算。该研究得出的更重要的发现如下:(i) 计算被证明是确定精确的σ空穴和lp空穴位置的不可靠方法。(ii)发现σ空穴和lp空穴的最大正静电势分别位于180°的F-Chal···PoC角(θ)和XYlp平面的质心处。(iii)路易斯碱性对σ空穴和lp空穴相互作用的强度有显著影响。(iv)与lp空穴相比,所研究的分子通过σ空穴与路易斯碱的相互作用更有利,并且(v)σ空穴和lp空穴相互作用的稳定分别源于静电力和色散力。