Qian Qihui, Wu Albert X, Chi Won Seok, Asinger Patrick A, Lin Sharon, Hypsher Asia, Smith Zachary P
Department of Chemical Engineering , Massachusetts Institute of Technology , Cambridge , Massachusetts 02139 , United States.
ACS Appl Mater Interfaces. 2019 Aug 28;11(34):31257-31269. doi: 10.1021/acsami.9b07500. Epub 2019 Aug 14.
Mixed-matrix membranes (MMMs) formed by dispersing metal-organic framework (MOF) particles in polymers have attracted significant attention because these composite systems can potentially surpass the separation performance of pure polymers alone. However, performance improvements are often unrealized because of poor interfacial compatibility between the MOF and the polymer, which results in interfacial defects. From a practical perspective, strategies are needed to address these defects so that MMMs can be deployed in real-world separation processes. From a fundamental perspective, strategies are needed to reliably form defect-free MMMs so that transport models can be applied to estimate pure MOF property sets, thereby enabling the development of robust structure-property relationships. To address these interfacial challenges, we have developed a method to surface-functionalize a UiO-66-NH MOF with a nanoscopic shell of covalently tethered 4,4'-(hexafluoroisopropylidene)diphthalic anhydride-Durene oligomers. When combined with a high-molecular-weight polymer of identical chemical structure to that of the imide-functional MOF surface, defect-free MMMs with uniform particle dispersions can be formed. With this technique, both permeabilities and selectivities of select gases in the MMMs were improved at loadings ranging from 5 to 40 wt %. At a 40 wt % loading, CO permeability and CO/CH selectivity were enhanced by 48 and 15%, respectively. Additionally, pure MOF permeabilities for H, N, O, CH, and CO were predicted by the Maxwell model.
通过将金属有机框架(MOF)颗粒分散在聚合物中形成的混合基质膜(MMM)引起了广泛关注,因为这些复合体系有可能超越单一纯聚合物的分离性能。然而,由于MOF与聚合物之间界面相容性差,导致界面缺陷,性能提升往往难以实现。从实际应用角度来看,需要采取策略解决这些缺陷,以便MMM能够应用于实际的分离过程。从基础研究角度来看,需要可靠地形成无缺陷MMM的策略,以便能够应用传输模型来估计纯MOF的性能集,从而建立稳固的结构-性能关系。为应对这些界面挑战,我们开发了一种方法,用共价连接的4,4'-(六氟异亚丙基)二邻苯二甲酸酐-均四甲苯低聚物的纳米壳对UiO-66-NH MOF进行表面功能化。当与化学结构与酰亚胺功能化MOF表面相同的高分子量聚合物结合时,可以形成具有均匀颗粒分散的无缺陷MMM。通过该技术,在5至40 wt%的负载范围内,MMM中特定气体的渗透率和选择性均得到提高。在40 wt%的负载量下,CO渗透率和CO/CH选择性分别提高了48%和15%。此外,通过麦克斯韦模型预测了纯MOF对H、N、O、CH和CO的渗透率。