Weyandt Elisabeth, Filot Ivo A W, Vantomme Ghislaine, Meijer E W
Laboratory of Macromolecular and Organic Chemistry, Eindhoven University of Technology, P. O. Box 513, 5600 MB, Eindhoven, The Netherlands.
Institute for Complex Molecular Systems, Eindhoven University of Technology, P. O. Box 513, 5600 MB, Eindhoven, The Netherlands.
Chemistry. 2021 Jul 2;27(37):9700-9707. doi: 10.1002/chem.202101036. Epub 2021 May 27.
The correlation between molecular structure and mechanism of supramolecular polymerizations is a topic of great interest, with a special focus on the pathway complexity of porphyrin assemblies. Their cooperative polymerization typically yields highly ordered, long 1D polymers and is driven by a combination of π-stacking due to solvophobic effects and hydrogen bonding interactions. Subtle changes in molecular structure, however, have significant influence on the cooperativity factor and yield different aggregate types (J- versus H-aggregates) of different lengths. In this study, the influence of amide connectivity on the self-assembly behavior of porphyrin-based supramolecular monomers was investigated. While in nonpolar solvents, C=O centered monomers readily assemble into helical supramolecular polymers via a cooperative mechanism, their NH centered counterparts form short, non-helical J-type aggregates via an isodesmic pathway. A combination of spectroscopy and density functional theory modelling sheds light on the molecular origins causing this stunning difference in assembly properties and demonstrates the importance of molecular connectivity in the design of supramolecular systems. Finally, their mutual interference in copolymerization experiments is presented.
超分子聚合的分子结构与机理之间的相关性是一个备受关注的话题,特别聚焦于卟啉组装体的途径复杂性。它们的协同聚合通常会产生高度有序的长一维聚合物,并且是由疏溶剂效应引起的π堆积和氢键相互作用共同驱动的。然而,分子结构的细微变化对协同因子有显著影响,并产生不同长度的不同聚集体类型(J聚集体与H聚集体)。在本研究中,研究了酰胺连接性对基于卟啉的超分子单体自组装行为的影响。在非极性溶剂中,以C=O为中心的单体通过协同机制容易组装成螺旋超分子聚合物,而以NH为中心的对应物则通过等键途径形成短的非螺旋J型聚集体。光谱学和密度泛函理论建模相结合,揭示了导致组装性质出现这种惊人差异的分子起源,并证明了分子连接性在超分子体系设计中的重要性。最后,展示了它们在共聚实验中的相互干扰。