Key Laboratory for Macromolecular Science of Shaanxi Province, School of Chemistry & Chemical Engineering, Shaanxi Normal University, Xi'an, 710119, China.
Department of Nanoscience, Joint School of Nanoscience & Nanoengineering, University of North Carolina at Greensboro, Greensboro, NC 27401, USA.
Chemistry. 2021 Oct 7;27(56):14042-14050. doi: 10.1002/chem.202102284. Epub 2021 Aug 26.
Recent years have witnessed various fascinating phenomena arising from the interactions of noncovalent bonds with homogeneous external electric fields (EEFs). Here we performed a computational study to interpret the sensitivity of intrinsic bond strengths to EEFs in terms of steric effect and orbital interactions. The block-localized wavefunction (BLW) method, which combines the advantages of both ab initio valence bond (VB) theory and molecular orbital (MO) theory, and the subsequent energy decomposition (BLW-ED) approach were adopted. The sensitivity was monitored and analyzed using the induced energy term, which is the variation in each energy component along the EEF strength. Systems with single or multiple hydrogen (H) or halogen (X) bond(s) were also examined. It was found that the X-bond strength change to EEFs mainly stems from the covalency change, while generally the steric effect rules the response of H-bonds to EEFs. Furthermore, X-bonds are more sensitive to EEFs, with the key difference between H- and X-bonds lying in the charge transfer interaction. Since phenylboronic acid has been experimentally used as a smart linker in EEFs, switchable sensitivity was scrutinized with the example of the phenylboronic acid dimer, which exhibits two conformations with either antiparallel or parallel H-bonds, thereby, opposite or consistent responses to EEFs. Among the studied systems, the quadruple X-bonds in molecular capsules exhibit remarkable sensitivity, with its interaction energy increased by -95.2 kJ mol at the EEF strength 0.005 a.u.
近年来,非共价键与均匀外电场(EEF)的相互作用产生了各种有趣的现象。在这里,我们进行了计算研究,从空间效应和轨道相互作用的角度解释了固有键强度对 EEF 的敏感性。我们采用了块局域波函数(BLW)方法,该方法结合了从头算价键(VB)理论和分子轨道(MO)理论的优点,以及随后的能量分解(BLW-ED)方法。使用诱导能项监测和分析了敏感性,该能项是沿 EEF 强度变化的每个能量分量的变化。还检查了具有单个或多个氢(H)或卤素(X)键的系统。结果发现,X 键强度对 EEF 的变化主要源于共价键的变化,而一般来说,空间效应支配着氢键对 EEF 的响应。此外,X 键对 EEF 更敏感,H 键和 X 键之间的关键区别在于电荷转移相互作用。由于苯硼酸已在实验中用作 EEF 中的智能连接物,因此以苯硼酸二聚体为例研究了可切换的敏感性,该二聚体具有反平行或平行氢键的两种构象,从而对 EEF 表现出相反或一致的响应。在所研究的系统中,分子胶囊中的四重 X 键表现出显著的敏感性,其相互作用能在 EEF 强度为 0.005 a.u. 时增加了-95.2 kJ/mol。