Nalaparaju Anjaiah, Jiang Jianwen
Department of Chemical and Biomolecular Engineering National University of Singapore Singapore 117576 Singapore.
Adv Sci (Weinh). 2021 Jan 21;8(5):2003143. doi: 10.1002/advs.202003143. eCollection 2021 Mar.
In the last two decades, metal-organic frameworks (MOFs) have attracted overwhelming attention. With readily tunable structures and functionalities, MOFs offer an unprecedentedly vast degree of design flexibility from enormous number of inorganic and organic building blocks or via postsynthetic modification to produce functional nanoporous materials. A large extent of experimental and computational studies of MOFs have been focused on gas phase applications, particularly the storage of low-carbon footprint energy carriers and the separation of CO-containing gas mixtures. With progressive success in the synthesis of water- and solvent-resistant MOFs over the past several years, the increasingly active exploration of MOFs has been witnessed for widespread liquid phase applications such as liquid fuel purification, aromatics separation, water treatment, solvent recovery, chemical sensing, chiral separation, drug delivery, biomolecule encapsulation and separation. At this juncture, the recent experimental and computational studies are summarized herein for these multifaceted liquid phase applications to demonstrate the rapid advance in this burgeoning field. The challenges and opportunities moving from laboratory scale towards practical applications are discussed.
在过去二十年中,金属有机框架(MOF)已引起了广泛关注。MOF具有易于调节的结构和功能,通过大量无机和有机结构单元或通过后合成修饰,可提供前所未有的巨大设计灵活性,以制备功能性纳米多孔材料。对MOF的大量实验和计算研究都集中在气相应用上,特别是低碳足迹能量载体的存储以及含CO气体混合物的分离。随着过去几年在合成耐水和耐溶剂MOF方面取得的逐步成功,人们见证了对MOF在广泛液相应用中的探索日益活跃,这些应用包括液体燃料净化、芳烃分离、水处理、溶剂回收、化学传感、手性分离、药物递送、生物分子封装和分离。在这个关头,本文总结了近期针对这些多方面液相应用的实验和计算研究,以展示这个新兴领域的快速进展。还讨论了从实验室规模迈向实际应用所面临的挑战和机遇。