Eenheid Algemene Chemie (ALGC), Vrije Universiteit Brussel (VUB), Pleinlaan 2, 1050, Brussels, Belgium.
Department of Chemistry, KU Leuven Molecular Design and Synthesis, Celestijnenlaan 200F Leuven Chem&Tech box 2404, 3001, Leuven, Belgium.
Chempluschem. 2020 Feb;85(2):267-276. doi: 10.1002/cplu.201900551. Epub 2019 Nov 22.
The current approach to designing low-molecular-weight gelators relies on a laborious trial-and-error process, mainly because of the lack of an accurate description of the noncovalent interactions crucial for supramolecular gelation. In this work, we report a multiscale bottom-up approach composed of several computational techniques to unravel the key interactions in a library of synthesized bis-urea-based gelators and rationalize their experimentally observed hydrogelation performance. In addition to density functional theory calculations and molecular dynamics, the noncovalent interaction index is applied as a tool to visualise and identify the different types of noncovalent interactions. Interestingly, as well as hydrogen bonds between urea moieties, hydrogen bonds between a urea moiety and a pyridine ring were shown to play a detrimental role in the early aggregation phase. These findings enabled us to explain the hydrogelation performance observed in a library of twelve bis-urea derivatives, which were synthesized with 58-95 % yields. From this library, three compounds were discovered to effectively gel water, with the most efficient hydrogelator only requiring a concentration of 0.2 w/v%.
目前设计低分子量凝胶剂的方法主要依赖于费力的反复试验过程,这主要是因为缺乏对超分子凝胶化至关重要的非共价相互作用的准确描述。在这项工作中,我们报告了一种由多种计算技术组成的多尺度自下而上的方法,以揭示合成的双脲基凝胶剂库中的关键相互作用,并合理推断其实验观察到的水凝胶性能。除了密度泛函理论计算和分子动力学外,非共价相互作用指数还被用作一种工具来可视化和识别不同类型的非共价相互作用。有趣的是,除了脲部分之间的氢键外,脲部分和吡啶环之间的氢键也被证明在早期聚集相中起有害作用。这些发现使我们能够解释在合成的十二种双脲衍生物库中观察到的水凝胶性能,这些衍生物的产率为 58-95%。从这个库中,发现了三种化合物可以有效地将水凝胶化,其中最有效的水凝胶剂只需要 0.2 w/v%的浓度。