Key Laboratory for Ultrafine Materials of Ministry of Education, School of Materials Science and Engineering, East China University of Science and Technology, Shanghai 200237, China.
Acc Chem Res. 2022 Aug 16;55(16):2235-2247. doi: 10.1021/acs.accounts.2c00262. Epub 2022 Jul 29.
The past few decades have been witnessing the rapid research boom of metal-organic frameworks (MOFs), which are assembled from metal nodes and multitopic organic linkers. In virtue of their modular assembly mode, they can be tailored according to desired functions to satisfy numerous potential applications. However, most initially reported MOFs were restricted to the microporous regime, limiting their practical applications with bulk molecules involved. Therefore, the research attention was immediately directed toward enlarging the intrinsic pore size of frameworks by extending the secondary building units or organic ligands. Unfortunately, the synthesis of more extended ligands is frequently tedious, and the most resultant MOFs are not sufficiently stable, restricting their popularization. The soft-template strategy is recognized as a promising avenue to produce hierarchically porous MOFs (HPMOFs), although early attempts generally failed due to the incompatibility between the surfactant self-assembly and guided crystallization process of MOF precursors in the organic phase. Therefore, developing a rational soft-template strategy to achieve the precise control of morphology and porosity of HPMOFs is of great significance.In this Account, we present our recent progress on the development and applications of HPMOFs prepared by soft-template strategies. We highlight the key issues upon using the soft-template strategy to synthesize HPMOFs. To enhance the interaction between the template and MOF precursor, a long-chain monocarboxylic acid strategy is introduced to synthesize HPMOFs with irregular mesopores in the organic phase. Then, to improve the order of mesopores, an aqueous-phase synthesis method using amphoteric surfactants as templates is developed to prepare ordered HPMOFs. To further enlarge the pore size and make the synthesis conditions of MOFs compatible with the self-assembly of surfactants, a salting-in species-induced self-assembly strategy is proposed and coupled with the structure-directing properties of copolymer templates to synthesize a series of HPMOFs with large mesopores and even macropores. This salting-in ion-mediated self-assembly (SIMS) strategy paves the way to modify the pore size, pore structure, morphology, and chemical composition of HPMOFs. The separated but intimately interconnected hierarchical pores in the resultant HPMOFs can not only realize rapid mass transport but also isolate different-size guest molecules so that they are competent for a broad range of applications including protein digestion, cascade catalysis, enzyme-assisted substrate sensing, and DNA cleavage. Finally, the limitations, challenges, and future developments of this rapidly evolving field are described. This Account with a highlight to the soft-template strategies not only provides interesting insights to understand the assembly process between templates and MOFs but also inspires an optimization of the properties of HPMOFs from diverse aspects for desired applications.
过去几十年见证了金属-有机骨架(MOFs)的快速研究热潮,它们由金属节点和多齿有机连接体组装而成。由于其模块化的组装方式,可以根据所需的功能进行定制,以满足众多潜在的应用需求。然而,最初报道的大多数 MOFs 仅限于微孔领域,限制了涉及体相分子的实际应用。因此,研究人员立即将注意力转向通过扩展次级构建单元或有机配体来扩大框架的固有孔径。不幸的是,合成更长的配体通常很繁琐,并且最最终的 MOFs 不够稳定,限制了它们的推广。软模板策略被认为是一种制备分级多孔 MOFs(HPMOFs)的有前途的途径,尽管早期的尝试通常由于表面活性剂自组装与有机相中原位 MOF 前体的导向结晶过程之间的不兼容性而失败。因此,开发一种合理的软模板策略来实现 HPMOF 形态和孔隙率的精确控制具有重要意义。
在本综述中,我们介绍了我们在使用软模板策略制备 HPMOF 方面的最新进展和应用。我们强调了在使用软模板策略合成 HPMOF 时需要解决的关键问题。为了增强模板与 MOF 前体之间的相互作用,引入了长链单羧酸策略,在有机相中合成具有不规则介孔的 HPMOF。然后,为了提高介孔的有序性,开发了一种使用两性表面活性剂作为模板的水相合成方法,制备有序的 HPMOF。为了进一步扩大孔径,并使 MOF 的合成条件与表面活性剂的自组装相兼容,提出了一种加盐物种诱导自组装策略,并将其与共聚物模板的结构导向性质相结合,合成了一系列具有大介孔甚至大孔的 HPMOF。这种加盐离子介导的自组装(SIMS)策略为修饰 HPMOF 的孔径、孔结构、形态和化学组成铺平了道路。所得 HPMOF 中分离但紧密相互连接的分级孔不仅可以实现快速传质,还可以隔离不同大小的客体分子,使其适用于广泛的应用,包括蛋白质消化、级联催化、酶辅助底物传感和 DNA 切割。最后,描述了该快速发展领域的局限性、挑战和未来发展。本综述重点介绍软模板策略,不仅提供了对模板与 MOF 之间组装过程的有趣见解,而且还从多个方面激发了对 HPMOF 性质的优化,以满足预期的应用需求。