Yang Yizhou, Ratsch Martin, Evans Austin M, Börjesson Karl
Department of Chemistry and Molecular Biology, University of Gothenburg, 412 96 Göteborg, Sweden.
George and Josephine Butler Polymer Laboratory, Department of Chemistry, University of Florida, Gainesville, Florida 32611-7200, United States.
J Am Chem Soc. 2023 Aug 23;145(33):18668-18675. doi: 10.1021/jacs.3c06621. Epub 2023 Aug 15.
The development of covalent organic frameworks (COFs) during the past decades has led to a variety of promising applications within gas storage, catalysis, drug delivery, and sensing. Even though most described synthesis methods result in powdery COFs with uncontrolled grain size, several approaches to grow COF films have recently been explored. However, in all COFs so far presented, the isolated materials are chemically homogeneous, with all functionalities homogeneously distributed throughout the entire material. Strategies to synthetically manipulate the spatial distribution of functionalities in a single film would be game changing. Specifically, this would allow for the introduction of local functionalities and even consecutive functions in single frameworks, thus broadening their synthetic versatility and application potential. Here, we synthesize two 3D crystalline COF films. The frameworks, the ionic B-based and neutral C-based COFs, have similar unit cell parameters, which enables their epitaxial stacking in a layered 3D COF film. The film growth was monitored in real time using a quartz crystal microbalance, showing linear growth with respect to reaction time. The high degree of polymerization was confirmed by chemical analysis and vibrational spectroscopy. Their polycrystalline and anisotropic natures were confirmed with grazing incidence X-ray diffraction. We further expand the scope of the concept by making layered films from COF-300 and its iodinated derivative. Finally, the work presented here will pave the path for multifunctional COF films where concurrent functionalities are embedded in the same crystalline material.
在过去几十年中,共价有机框架(COF)的发展已在气体存储、催化、药物递送和传感等领域带来了各种有前景的应用。尽管大多数已描述的合成方法会产生粒度不受控制的粉末状COF,但最近已探索了几种生长COF薄膜的方法。然而,在迄今为止展示的所有COF中,分离出的材料在化学上是均匀的,所有官能团均匀分布在整个材料中。在单个薄膜中合成操纵官能团空间分布的策略将带来变革。具体而言,这将允许在单个框架中引入局部官能团甚至连续的功能,从而拓宽其合成多功能性和应用潜力。在此,我们合成了两种三维晶体COF薄膜。这些框架,即基于离子B的和中性C的COF,具有相似的晶胞参数,这使得它们能够在外延堆叠成层状三维COF薄膜。使用石英晶体微天平实时监测薄膜生长,结果表明其生长与反应时间呈线性关系。通过化学分析和振动光谱证实了高聚合度。通过掠入射X射线衍射证实了它们的多晶和各向异性性质。我们通过由COF-300及其碘化衍生物制备层状薄膜进一步拓展了该概念的范围。最后,本文所展示的工作将为在同一晶体材料中嵌入并发功能的多功能COF薄膜铺平道路。