Flinders Centre for NanoScale Science and Technology, College of Science and Engineering, Flinders University, Bedford Park, Adelaide, Australia.
Org Biomol Chem. 2018 Aug 29;16(34):6206-6223. doi: 10.1039/c8ob00944a.
The effect of the degree of conformational rigidity and/or flexibility on preorganisation in artificial molecular receptors continues to be actively explored by supramolecular chemists. This work describes a bis-porphyrin architecture, linked via a rigid polycyclic backbone, in which a sterically bulky 2,3,5,6-tetramethylphenyl diimide core restricts rotation to afford two non-interconvertible tweezer conformations; syn- and anti-. After separation, the host-guest chemistry of each conformation was studied independently. The difference in host geometry allows only the syn-conformation to form a strong 1 : 1 bis-porphyrin complex with the diamino ligand 1,4-diazabicyclo[2.2.2]octane (DABCO) (K11 = 1.25 × 108 M-1), with the anti-conformation adopting a 2 : 2 sandwich complex with DABCO (K22 = 5.57 × 1017 M-3).
构象刚性和/或柔性对人工分子受体预组织的影响继续受到超分子化学家的积极探索。本工作描述了一种双卟啉结构,通过刚性多环骨架连接,其中一个空间位阻大的 2,3,5,6-四甲基苯二酰亚胺核心限制了旋转,从而提供了两种不可相互转化的钳子构象;顺式和反式。分离后,分别研究了每种构象的主体-客体化学。主体几何形状的差异仅允许顺式构象与二氨基配体 1,4-二氮杂双环[2.2.2]辛烷(DABCO)(K11 = 1.25 × 108 M-1)形成强的 1:1 双卟啉配合物,而反式构象与 DABCO 形成 2:2 夹心配合物(K22 = 5.57 × 1017 M-3)。