Yusuf Hamied Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, UK.
Phys Chem Chem Phys. 2022 Aug 3;24(30):18124-18132. doi: 10.1039/d2cp03004g.
The H-bonding properties of compounds that contain multiple functional groups are difficult to predict, because there are through-bond polarisation effects and long-range secondary electrostatic interactions that have significant effects on the interactions with solvents and other molecules. Here we use experimental measurements of association constants for formation of 1 : 1 H-bonded complexes that contain a single well-defined H-bond and a single well-defined secondary electrostatic interaction to quantify the magnitude of this effect. The results were used to develop a computational method for calculating functional group H-bond parameters that accurately reproduce the magnitudes of both primary H-bonding interaction and secondary electrostatic interactions. The effects of secondary electrostatic interactions are observed in calculations of Molecular Electrostatic Potential (MEP) values, but at the van der Waals surface, the magnitude of the effect is highly overestimated. MEP values calculated on electron density isosurfaces that lie closer to the nuclei provide a more accurate description of the experimental observations. H-bond parameters calculated using this approach successfully account for the properties of arrays of multiple H-bond donor and acceptor groups in different configurations. The results provide insight into the factors that govern the interaction properties of molecules that contain multiple functional groups and provide an accurate method for prediction of solution phase complexation free energies based on gas phase calculations of individual molecules.
含有多个官能团的化合物的氢键性质难以预测,因为存在贯穿键的极化效应和远程次级静电相互作用,这些效应对与溶剂和其他分子的相互作用有重大影响。在这里,我们使用形成 1:1 氢键复合物的结合常数的实验测量来定量这些效应的大小,这些复合物含有单个明确的氢键和单个明确的次级静电相互作用。结果被用于开发一种计算方法,用于计算官能团氢键参数,该方法可以准确地再现主要氢键相互作用和次级静电相互作用的大小。在计算分子静电势(MEP)值时可以观察到次级静电相互作用的影响,但在范德华表面,效应的大小被高度高估。更接近原子核的电子密度等位面计算出的 MEP 值可以更准确地描述实验观察结果。使用这种方法计算出的氢键参数成功地解释了不同构型的多个氢键供体和受体基团阵列的性质。研究结果深入了解了含有多个官能团的分子相互作用性质的控制因素,并提供了一种基于单个分子的气相计算预测溶液相络合自由能的准确方法。