Sun Jiang, Wang Xuejun, Wang Qiankun, Peng Lan, Liu Yunqi, Wei Dacheng
State Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science, Fudan University, Shanghai, China.
Laboratory of Molecular Materials and Devices, Fudan University, Shanghai, China.
Nat Protoc. 2024 Feb;19(2):340-373. doi: 10.1038/s41596-023-00915-7. Epub 2023 Nov 24.
Crystalline polymer materials, e.g., hyper-crosslinked polystyrene, conjugate microporous polymers and covalent organic frameworks, are used as catalyst carriers, organic electronic devices and molecular sieves. Their properties and applications are highly dependent on their crystallinity. An efficient polymerization strategy for the rapid preparation of highly or single-crystalline materials is beneficial not only to structure-property studies but also to practical applications. However, polymerization usually leads to the formation of amorphous or poorly crystalline products with small grain sizes. It has been a challenging task to efficiently and precisely assemble organic molecules into a single crystal through polymerization. To address this issue, we developed a supercritically solvothermal method that uses supercritical carbon dioxide (sc-CO) as the reaction medium for polymerization. Sc-CO accelerates crystal growth due to its high diffusivity and low viscosity compared with traditional organic solvents. Six covalent organic frameworks with different topologies, linkages and crystal structures are synthesized by this method. The as-synthesized products feature polarized photoluminescence and second-harmonic generation, indicating their high-quality single-crystal nature. This method holds advantages such as rapid growth rate, high productivity, easy accessibility, industrial compatibility and environmental friendliness. In this protocol, we provide a step-by-step procedure including preparation of monomer dispersion, polymerization in sc-CO, purification and characterization of the single crystals. By following this protocol, it takes 1-5 min to grow sub-mm-sized single crystals by polymerization. The procedure takes ~4 h from preparation of monomer dispersion and polymerization in sc-CO to purification and drying of the product.
结晶聚合物材料,例如超交联聚苯乙烯、共轭微孔聚合物和共价有机框架,被用作催化剂载体、有机电子器件和分子筛。它们的性质和应用高度依赖于其结晶度。一种用于快速制备高度结晶或单晶材料的高效聚合策略不仅有利于结构-性能研究,也有利于实际应用。然而,聚合通常会导致形成无定形或结晶度差、晶粒尺寸小的产物。通过聚合将有机分子高效且精确地组装成单晶一直是一项具有挑战性的任务。为了解决这个问题,我们开发了一种超临界溶剂热法,该方法使用超临界二氧化碳(sc-CO₂)作为聚合反应介质。与传统有机溶剂相比,sc-CO₂因其高扩散率和低粘度而加速晶体生长。通过这种方法合成了六种具有不同拓扑结构、连接方式和晶体结构的共价有机框架。所合成的产物具有偏振光致发光和二次谐波产生特性,表明它们具有高质量的单晶性质。该方法具有生长速率快、生产率高、易于实现、工业兼容性好和环境友好等优点。在本方案中,我们提供了一个分步程序,包括单体分散体的制备、在sc-CO₂中的聚合、单晶的纯化和表征。按照这个方案,通过聚合生长亚毫米尺寸的单晶需要1-5分钟。从单体分散体的制备和在sc-CO₂中的聚合到产物的纯化和干燥,整个过程大约需要4小时。