Department of Chemistry, University at Buffalo, The State University of New York, Buffalo, New York 14260, USA.
Department of Chemical and Biological Engineering, University at Buffalo, The State University of New York, Buffalo, New York 14260, USA.
Dalton Trans. 2018 Jun 19;47(24):7905-7915. doi: 10.1039/c8dt00082d.
Discrete metal-organic polyhedra (MOPs) containing copper(ii), palladium(ii), and iron(ii) nodes were synthesized as fillers for mixed-matrix materials (MMMs) with a polyvinylidine fluoride (PVDF) polymer phase and contrasted against an MMM containing a metal-organic framework, MOF-5. When a given MOP was soluble in the precursor solutions, the resulting MMMs were thin, flexible, and homogeneous based on microscopy and SEM imaging. Analogous MMM formation using either insoluble MOPs or the inherent insoluble MOF-5 showed a higher degree of phase separation and inhomogeneity. Even when a MOP was not fully soluble, a significant particle size decrease was observed in contrast to the MOF-5 materials wherein the crystallites remained largely intact. This is a consequence of solubilizing the MOP fillers into the polymer solvent. The crystallinity and thermal stabilities of the MMMs were compared to pure PVDF using powder X-ray diffraction, and differential scanning calorimetry, indicating that the incorporation of MOPs both decreased overall crystallinity as well as increased thermal stability. In addition, MMMs containing PdMOP and FeMOP showed improved gas permeabilities relative to pure PVDF for H2, N2, CH4, and CO2, with the 10 wt% FeMOP membrane more selective for CO2 over N2 and H2.
含有铜(ii)、钯(ii)和铁(ii)节点的离散金属有机多面体(MOPs)被合成作为具有聚偏二氟乙烯(PVDF)聚合物相的混合基质材料(MMM)的填充物,并与含有金属有机骨架的 MMM 进行对比,MOF-5。当给定的 MOP 可溶于前体溶液中时,所得的 MMM 基于显微镜和 SEM 成像,表现出薄、柔韧和均匀的特点。使用不可溶的 MOP 或固有不可溶的 MOF-5 进行类似的 MMM 形成显示出更高程度的相分离和非均相性。即使 MOP 不完全溶解,与 MOF-5 材料相比,观察到粒径显著减小,而 MOF-5 材料中的晶体基本保持完整。这是由于将 MOP 填料溶解在聚合物溶剂中。使用粉末 X 射线衍射和差示扫描量热法比较了 MMMs 与纯 PVDF 的结晶度和热稳定性,表明 MOPs 的掺入不仅降低了整体结晶度,而且提高了热稳定性。此外,与纯 PVDF 相比,含有 PdMOP 和 FeMOP 的 MMMs 对 H2、N2、CH4 和 CO2 的气体渗透率有所提高,其中 10wt%FeMOP 膜对 CO2 相对于 N2 和 H2 的选择性更高。