Bimodal versus Unimodal Pore Architectures in Diimine-Linked Two-Dimensional Covalent Organic Frameworks

化学 三斜晶系 衍射 结晶学 二面角 共价键 化学物理 格子(音乐) 电子衍射 微晶 滑脱 分子动力学 X射线晶体学 失真(音乐) 表征(材料科学) 六边形晶格 纳米技术 堆积 上部结构 晶体结构 合并(版本控制) 对称(几何) 分子 金属有机骨架
作者
Qiao Zhang,Zhen-Hua Li,Xilin Jia,Zhihao Li,Cailing Chen,Zixuan Chen,Guanxing Li,Mengting Hu,Y. F. Chen,Qingxiao Wang,Pingxi Mo,Yu Wang,Zhehao Huang,Zhan Shi,Yu Han
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:148 (8): 8677-8685
标识
DOI:10.1021/jacs.5c20834
摘要

Imine-linked two-dimensional covalent organic frameworks (2D COFs) are commonly considered structurally simple materials, yet precise structure determination by X-ray diffraction remains challenging due to the difficulty of obtaining large single crystals. Here, we show that a single-atom change in the aldehyde substituent is sufficient to switch both pore architecture and lattice symmetry in a prototypical 2D COF system. Comparing the widely studied TAPB-DMPDA (COF-OMe) with its -SMe analogue (COF-SMe), we establish a bimodal mesoporous framework for COF-OMe and a unimodal one for COF-SMe through a combination of advanced imaging and diffraction techniques alongside finely sampled gas/vapor physisorption, which resolves two-step capillary processes exclusively in COF-OMe. Electron ptychography reveals previously unrecognized structural features in COF-OMe and enables refinement of its model to propeller-like 1,3,5-tris(4-aminophenyl)benzene nodes with unusually large dihedral angles. Simulated electrostatic potential and X-ray diffraction pattern based on the refined model reproduce the experimental data with high fidelity. COF-SMe undergoes a symmetry reduction from hexagonal to triclinic during kinetic-to-thermodynamic phase evolution, driven by subtle interlayer slippage and intralayer distortion while retaining a single pore type. Together, these results uncover unexpected structural diversity and substituent-governed flexibility in 2D COFs, underscoring the need for state-of-the-art characterization to reassess long-accepted structural models.
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