Wang Changwei, Fu Yuzhuang, Zhang Lina, Danovich David, Shaik Sason, Mo Yirong
Department of Chemistry, College of Science, China University of Petroleum (East China), Changjiangxi Road 66, 266580, Tsingtao, China.
Institute of Chemistry, The Hebrew University, Jerusalem, 91904, Israel.
J Comput Chem. 2018 Apr 5;39(9):481-487. doi: 10.1002/jcc.25068. Epub 2017 Sep 26.
Recent theoretical studies suggested that hydrogen bonds between ions of like charges are of a covalent nature due to the dominating n →σ* charge-transfer (CT) interaction. In this work, energy profiles of typical hydrogen (H) and halogen (X) bonding systems formed from ions of like charges are explored using the block-localized wavefunction (BLW) method, which can derive optimal geometries and wave functions with the CT interaction "turned off." The results demonstrate that the kinetic stability, albeit reduced, is maintained for most investigated systems even after the intermolecular CT interaction is quenched. Further energy decomposition analyses based on the BLW method reveal that, despite a net repulsive Coulomb repulsion, a stabilizing component exists due to the polarization effect that plays significant role in the kinetic stability of all systems. Moreover, the fingerprints of the augmented electrostatic interaction due to polarization are apparent in the variation patterns of the electron density. All in all, much like in standard H- and X-bonds, the stability of such bonds between ions of like charges is governed by the competition between the stabilizing electrostatic and charge transfer interactions and the destabilizing deformation energy and Pauli exchange repulsion. While in most cases of "anti-electrostatic" bonds the CT interaction is of a secondary importance, we also find cases where CT is decisive. As such, this work validates the existence of anti-electrostatic H- and X-bonds. © 2017 Wiley Periodicals, Inc.
最近的理论研究表明,由于占主导地位的n→σ*电荷转移(CT)相互作用,同种电荷离子之间的氢键具有共价性质。在这项工作中,我们使用块定域波函数(BLW)方法探索了由同种电荷离子形成的典型氢(H)键和卤(X)键体系的能量分布,该方法可以在CT相互作用“关闭”的情况下导出最佳几何结构和波函数。结果表明,即使分子间CT相互作用被淬灭,大多数研究体系的动力学稳定性虽然降低但仍得以保持。基于BLW方法的进一步能量分解分析表明,尽管存在净排斥的库仑排斥力,但由于极化效应存在一个稳定分量,它在所有体系的动力学稳定性中起着重要作用。此外,极化增强静电相互作用的特征在电子密度的变化模式中很明显。总而言之,与标准的H键和X键非常相似,同种电荷离子之间此类键的稳定性由稳定的静电和电荷转移相互作用与不稳定的变形能和泡利交换排斥力之间的竞争所决定。虽然在大多数“反静电”键的情况下CT相互作用是次要的,但我们也发现了CT起决定性作用的情况。因此,这项工作验证了反静电H键和X键的存在。©2017威利期刊公司