Department of Chemistry, Texas A&M University, College Station, TX, USA.
State Key Laboratory of Coordination Chemistry, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, China.
Nat Protoc. 2023 Feb;18(2):604-625. doi: 10.1038/s41596-022-00759-7. Epub 2022 Oct 28.
Metal-organic frameworks (MOFs) demonstrate promise for a multitude of applications owing to their high porosity and surface area. However, the majority of conventional MOFs possess only micropores with very limited accessibility to substances larger than 2 nm-especially functional biomacromolecules like some proteins. It is challenging to create an appropriately large pore size while avoiding framework collapse in MOFs. Herein, we present the generation of mesopores in microporous MOFs through three facile and effective techniques, namely Soxhlet washing, linker hydrolysis and linker thermolysis. These postsynthetic elimination approaches have been applied in selected MOFs, including PCN-250, PCN-160 and UiO-66, and controllably generate MOFs with hierarchical pores and high stability. Our work demonstrates reproducible and straightforward methods resulting in hierarchically porous materials that possess the benefits of mesoporosity while borrowing the robustness of a micropore framework. All the procedures can be conducted reliably at a multigram scale and operation time less than 6 h, representing a significant effort in the field of MOF synthesis. These hierarchically porous MOFs show great promise in a wide range of applications as efficient adsorbents, catalysts and drug carriers.
金属-有机骨架(MOFs)由于其高孔隙率和比表面积,在众多应用中具有广阔的前景。然而,大多数传统的 MOFs 仅具有微孔,对大于 2nm 的物质(特别是一些蛋白质等功能性生物大分子)的可及性非常有限。在 MOFs 中创造适当大的孔径而避免骨架塌陷是具有挑战性的。在此,我们通过三种简便有效的技术,即索氏洗涤、连接体水解和连接体热解,在微孔 MOFs 中生成介孔。这些后合成消除方法已应用于选定的 MOFs 中,包括 PCN-250、PCN-160 和 UiO-66,并可控制地生成具有分级孔和高稳定性的 MOFs。我们的工作证明了可重复且简单的方法可以得到具有介孔的分级多孔材料,同时借鉴了微孔骨架的稳健性。所有程序都可以在多克规模和少于 6 小时的操作时间内可靠地进行,这代表了在 MOF 合成领域的重大努力。这些分级多孔 MOFs 在作为高效吸附剂、催化剂和药物载体的广泛应用中具有广阔的前景。