Gao Chao, Li Jian, Yin Sheng, Lin Guiqing, Ma Tianqiong, Meng Yi, Sun Junliang, Wang Cheng
Sauvage Center for Molecular Sciences and Key Laboratory of Biomedical Polymers (Ministry of Education), College of Chemistry and Molecular Sciences, Wuhan University, Wuhan, China.
College of Chemistry and Molecular Engineering, Beijing National Laboratory for Molecular Sciences, Peking University, Beijing, 100871, China.
Angew Chem Int Ed Engl. 2019 Jul 15;58(29):9770-9775. doi: 10.1002/anie.201905591. Epub 2019 Jun 24.
Herein, we reported the designed synthesis of three isostructural three-dimensional covalent organic frameworks (3D COFs) with -H, -Me, or -F substituents, which have similar crystallinity and topology. Their crystal structures were determined by continuous rotation electron diffraction (cRED), and all three 3D COFs were found to adopt a fivefold interpenetrated pts topology. More importantly, the resolution of these cRED datasets reached up to 0.9-1.0 Å, enabling the localization of all non-hydrogen atomic positions in a COF framework directly by 3D ED techniques for the first time. In addition, the precise control of the pore environments through the use of different functional groups led to different selectivities for CO over N . We have thus confirmed that polycrystalline COFs can be definitely studied to the atomic level as other materials, and this study should also inspire the design and synthesis of 3D COFs with tailored pore environments for interesting applications.
在此,我们报道了具有 -H、-Me 或 -F 取代基的三种同构三维共价有机框架(3D COF)的设计合成,它们具有相似的结晶度和拓扑结构。通过连续旋转电子衍射(cRED)确定了它们的晶体结构,发现所有三种 3D COF 均采用五重互穿的 pts 拓扑结构。更重要的是,这些 cRED 数据集的分辨率高达 0.9 - 1.0 Å,首次能够通过 3D ED 技术直接在 COF 框架中定位所有非氢原子位置。此外,通过使用不同的官能团对孔环境进行精确控制,导致对 CO 与 N 的选择性不同。因此,我们证实了多晶 COF 可以像其他材料一样被明确地研究到原子水平,并且这项研究也应该激发具有定制孔环境的 3D COF 的设计和合成,以用于有趣的应用。