Kubo Haruka, Konishi Shunsuke, Oketani Ryusei, Hayashi Takashi, Hisaki Ichiro
Division of Chemistry, Graduate School of Engineering Science, Osaka University, 1-3 Machikaneyama, Toyonaka, Osaka, 560-8531, Japan.
Department of Applied Chemistry, Graduate School of Engineering, Osaka University, 2-1 Yamadaoka, Suita, Osaka, 565-0871, Japan.
Chemistry. 2024 Aug 6;30(44):e202401645. doi: 10.1002/chem.202401645. Epub 2024 Jul 16.
A series of isostructural reticular frameworks with systematic differences on chemical structures allows us to disclose correlations between specific structural factors and properties, providing insights for designing novel porous materials. However, even slight differences in the molecular structure often lead to non-isostructural polymorphic frameworks particularly in the case of hydrogen-bonded organic frameworks (HOFs) because the structures of HOFs are based on a subtle balance of reversible interactions. In this study, we found that three simple analogues of tetracarboxylic acids with naphthalene, quinoxaline, and pyrazinopyrazine cores (NT, QX, and PP, respectively) yielded isostructural solvated HOFs (NT-1, QX-1, and PP-1, respectively), where hydrogen-bonded sql-networked sheets were slip-stacked with closely similar manners. More importantly, these isostructural HOFs underwent structural transformations in different manners upon removal of the guest solvents. Comparison of the crystal structures of the HOFs before and after the transformation revealed that intermolecular interactions of the core significantly affected on rearrangements of hydrogen bonds in the transformation. The results suggest the potential to control the properties and functions of isostructural HOFs by elements in the core.
一系列化学结构存在系统性差异的同构网状框架使我们能够揭示特定结构因素与性质之间的关联,为设计新型多孔材料提供思路。然而,分子结构上即使是细微的差异往往也会导致非等结构的多晶型框架,特别是在氢键有机框架(HOF)的情况下,因为HOF的结构基于可逆相互作用的微妙平衡。在本研究中,我们发现三种分别以萘、喹喔啉和吡嗪并吡嗪为核心的四羧酸简单类似物(分别为NT、QX和PP)产生了同构的溶剂化HOF(分别为NT-1、QX-1和PP-1),其中氢键连接的sql网络片以非常相似的方式滑动堆积。更重要的是,这些同构的HOF在去除客体溶剂后以不同方式发生结构转变。对转变前后HOF晶体结构的比较表明,核心的分子间相互作用在转变过程中对氢键的重排有显著影响。结果表明,通过核心中的元素控制同构HOF的性质和功能具有潜力。