Li Wei, Bie Zhengwei, Zhang Chi, Xu Xintong, Wang Song, Yang Yuhao, Zhang Ziyang, Yang Xuan, Lim Khak Ho, Wang Qingyue, Wang Wen-Jun, Li Bo-Geng, Liu Pingwei
State Key Lab of Chemical Engineering, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, Zhejiang 310027, China.
Institute of Zhejiang University - Quzhou, 78 Jiuhua Boulevard North, Quzhou 324000, China.
J Am Chem Soc. 2023 Sep 6;145(35):19283-19292. doi: 10.1021/jacs.3c04995. Epub 2023 Aug 16.
Precise tailoring of the aggregation state of covalent organic frameworks (COFs) to form a hierarchical porous structure is critical to their performance and applications. Here, we report a one-pot and one-step strategy of using dynamic combinatorial chemistry to construct imine-based hollow COFs containing meso- and macropores. It relies on a direct copolymerization of three or more monomers in the presence of two monofunctional competitors. The resulting particle products possess high crystallinity and hierarchical pores, including micropores around 0.93 nm, mesopores widely distributed in the range of 3.1-32 nm, and macropores at about 500 nm, while the specific surface area could be up to 748 m·g, with non-micropores accounting for 60% of the specific surface area. The particles demonstrate unique advantages in the application as nanocarriers for in situ loading of Pd catalysts at 93.8% loading efficiency in the copolymerization of ethylene and carbon monoxide. The growth and assembly of the copolymer could thus be regulated to form flower-shaped particles, efficiently suppressing the fouling of the reactor. The copolymer's weight-average molecular weight and the melting temperature are also highly improved. Our method provides a facile way of fabricating COFs with hierarchical pores for advanced applications in catalysis.
精确调整共价有机框架(COF)的聚集状态以形成分级多孔结构对其性能和应用至关重要。在此,我们报道了一种利用动态组合化学构建含介孔和大孔的亚胺基中空COF的一锅一步策略。它依赖于在两种单官能竞争剂存在下三种或更多种单体的直接共聚。所得颗粒产物具有高结晶度和分级孔,包括约0.93nm的微孔、广泛分布在3.1 - 32nm范围内的介孔和约500nm的大孔,而比表面积可达748 m²·g,其中非微孔占比表面积的60%。这些颗粒在作为纳米载体原位负载钯催化剂的应用中表现出独特优势,在乙烯与一氧化碳共聚中负载效率达93.8%。由此可以调节共聚物的生长和组装以形成花状颗粒,有效抑制反应器的结垢。共聚物的重均分子量和熔点也得到显著提高。我们的方法为制备具有分级孔的COF提供了一种简便途径,以用于催化等先进应用。