Ayala Sergio, Bentz Kyle C, Cohen Seth M
Department of Chemistry and Biochemistry , University of California, San Diego , La Jolla , CA 92023-0358 , USA . Email:
Chem Sci. 2018 Nov 30;10(6):1746-1753. doi: 10.1039/c8sc04250k. eCollection 2019 Feb 14.
The hybridization of block copolymers and metal-organic frameworks (MOFs) to create novel materials (block co-polyMOFs, BCPMOFs) with controlled morphologies is reported. In this study, block copolymers containing poly(1,4-benzenedicarboxylic acid, Hbdc) and morphology directing poly(ethylene glycol) (PEG) or poly(cyclooctadiene) (poly(COD)) blocks were synthesized for the preparation of BCPMOFs. Block copolymer architecture and weight fractions were found to have a significant impact on the resulting morphology, mediated through the assembly of polymer precursors prior to MOF formation, as determined through dynamic light scattering. Simple modification of block copolymer weight fraction allowed for tuning of particle size and morphology with either faceted and spherical features. Modification of polymer block architecture represents a simple and powerful method to direct morphology in highly crystalline polyMOF materials. Furthermore, the BCPMOFs could be prepared from both Zr and Zn MOFs, yielding hybrid materials with appreciable surface areas and tuneable porosities. The resulting Zn BCPMOF yielded materials with very narrow size distributions and uniform cubic morphologies. The use of topology in BCPMOFs to direct morphology in block copolymer assemblies may open new methodologies to access complex materials far from thermodynamic equilibrium.
据报道,通过嵌段共聚物与金属有机框架(MOF)的杂化来制备具有可控形态的新型材料(嵌段共聚物-金属有机框架,BCPMOF)。在本研究中,合成了含有聚(1,4-苯二甲酸,Hbdc)以及形态导向性聚乙二醇(PEG)或聚环辛二烯(聚(COD))嵌段的嵌段共聚物,用于制备BCPMOF。通过动态光散射测定发现,嵌段共聚物的结构和重量分数对最终形态有显著影响,这是通过在MOF形成之前聚合物前体的组装来介导的。简单改变嵌段共聚物的重量分数可以调节具有多面和球形特征的颗粒尺寸和形态。聚合物嵌段结构的改变是一种在高度结晶的聚MOF材料中引导形态的简单而有效的方法。此外,BCPMOF可以由Zr和Zn MOF制备而成,得到具有可观表面积和可调孔隙率的杂化材料。所得的Zn BCPMOF产生了尺寸分布非常窄且具有均匀立方形态的材料。在BCPMOF中利用拓扑结构来引导嵌段共聚物组装体中的形态,可能会开辟新的方法来获得远离热力学平衡的复杂材料。