Triestram Lena, Falcioni Fabio, Popelier Paul L A
Department of Chemistry, University of Manchester, Manchester M13 9PL, Great Britain.
ACS Omega. 2023 Sep 14;8(38):34844-34851. doi: 10.1021/acsomega.3c04149. eCollection 2023 Sep 26.
The interaction energies of nine XH···π (X = C, N, and O) benzene-containing van der Waals complexes were analyzed, at the atomic and fragment levels, using QTAIM multipolar electrostatics and the energy partitioning method interacting quantum atoms/fragment (IQA/IQF). These descriptors were paired with the relative energy gradient method, which solidifies the connection between quantum mechanical properties and chemical interpretation. This combination provides a precise understanding, both qualitative and quantitative, of the nature of these interactions, which are ubiquitous in biochemical systems. The formation of the OH···π and NH···π systems is electrostatically driven, with the component of the quadrupole moment of the benzene carbons interacting with the charges of X and H in XH. There is the unexpectedly intramonomeric role of X-H (X = O, N) where its electrostatic energy helps the formation of the complex and its covalent energy thwarts it. However, the CH···π interaction is governed by exchange-correlation energies, thereby establishing a covalent character, as opposed to the literature's designation as a noncovalent interaction. Moreover, dispersion energy is relevant, statically and in absolute terms, but less relevant compared to other energy components in terms of the formation of the complex. Multipolar electrostatics are similar across all systems.
利用量子拓扑原子多极静电学和相互作用量子原子/片段能量划分方法(IQA/IQF),在原子和片段水平上分析了九个XH···π(X = C、N和O)含苯范德华络合物的相互作用能。这些描述符与相对能量梯度方法相结合,巩固了量子力学性质与化学解释之间的联系。这种结合提供了对这些在生化系统中普遍存在的相互作用本质的精确理解,包括定性和定量方面。OH···π和NH···π体系的形成是由静电驱动的,苯环碳原子四极矩的 分量与XH中X和H的电荷相互作用。X-H(X = O、N)存在意想不到的单体内作用,其静电能有助于络合物的形成,而其共价能则阻碍络合物的形成。然而,CH···π相互作用由交换相关能控制,从而确立了共价特征,这与文献中其被指定为非共价相互作用相反。此外,色散能在静态和绝对值方面都有相关性,但就络合物的形成而言,与其他能量成分相比相关性较小。所有体系中的多极静电学都是相似的。