Duan Chongxiong, Zhang Hang, Yang Minhui, Li Feier, Yu Yi, Xiao Jing, Xi Hongxia
School of Chemistry and Chemical Engineering, South China University of Technology Guangzhou 510640 PR China
Guangdong Provincial Key Laboratory of Atmospheric Environment and Pollution Control, South China University of Technology, Guangzhou Higher Education Mega Centre Guangzhou 510006 PR China.
Nanoscale Adv. 2018 Dec 12;1(3):1062-1069. doi: 10.1039/c8na00262b. eCollection 2019 Mar 12.
Hierarchically porous metal-organic frameworks (MOFs) have recently emerged as a novel crystalline hybrid material with tunable porosity. Many efforts have been made to develop hierarchically porous MOFs, yet their low-energy fabrication remains a challenge and the underlying mechanism is still unknown. In this study, the rapid fabrication of two hierarchically porous MOFs (Cu-BTC and ZIF-8) was carried out at room temperature and ambient pressure for 10 min using a novel surfactant as the template in a (Cu, Zn) hydroxy double salt (HDS) solution, where the (Cu, Zn) HDS accelerated the nucleation of crystals and the anionic surfactants served as templates to fabricate mesopores and macropores. The growth mechanism of hierarchically porous MOFs was analyzed mesodynamics (MesoDyn) simulation, and then the synthetic mechanism of hierarchically porous MOFs at the molecular level was obtained. The as-synthesized hierarchically porous Cu-BTC showed a high uptake capacity of 646 mg g, which is about 25% higher as compared with microporous Cu-BTC (516 mg g) for the capture of toluene. This study provides a theoretical basis for the large-scale fabrication of hierarchically porous MOFs and offers a reference for the understanding of their synthetic mechanism.
分级多孔金属有机框架材料(MOFs)最近作为一种具有可调孔隙率的新型晶体杂化材料出现。人们已经做出了许多努力来开发分级多孔MOFs,但其低能耗制备仍然是一个挑战,其潜在机制仍然未知。在本研究中,使用新型表面活性剂作为模板,在(铜,锌)羟基双盐(HDS)溶液中,于室温和常压下10分钟内快速制备了两种分级多孔MOFs(Cu-BTC和ZIF-8),其中(铜,锌)HDS加速了晶体的成核,阴离子表面活性剂作为模板来制造中孔和大孔。通过介观动力学(MesoDyn)模拟分析了分级多孔MOFs的生长机制,进而获得了分级多孔MOFs在分子水平上的合成机制。所合成的分级多孔Cu-BTC对甲苯的捕获显示出646 mg g的高吸附容量,与微孔Cu-BTC(516 mg g)相比高出约25%。该研究为分级多孔MOFs的大规模制备提供了理论基础,并为理解其合成机制提供了参考。