Luz Ignacio, Toy Lora, Rabie Feras, Lail Marty, Soukri Mustapha
RTI International , Research Triangle Park , North Carolina 27709 , United States.
ACS Appl Mater Interfaces. 2019 May 1;11(17):15638-15645. doi: 10.1021/acsami.9b02622. Epub 2019 Apr 23.
A general, green, efficient, and easily scalable methodology has been developed to more effectively incorporate (disperse) metal-organic frameworks (MOFs) into polymer technologies via solid state synthesis of any MOF nanocrystals within soluble mesoporous polymers. The resulting solid hybrid materials (pellets) can be directly transformed into colloidal MOF polymeric suspensions (inks) by simple dissolution in organic solvents. The straightforward use of novel colloidal MOF polymeric inks as ultimate additive for mixed matrix membranes resulted in unprecedented snakeskin microstructure exhibiting outstanding selectivity for CO over N (>100) from post-combustion flue gas at very low and well-dispersed MOF nanocrystal concentrations ranging from 1 to 7 wt %. This novel methodology brings one of the most versatile routes yet reported to transform any MOF into more functional forms that can be directly integrated into any conventional polymer technology at the commercial scale.
一种通用、绿色、高效且易于扩展的方法已被开发出来,通过在可溶性介孔聚合物中固态合成任何金属有机框架(MOF)纳米晶体,更有效地将MOF纳入(分散)聚合物技术中。所得的固体杂化材料(颗粒)可通过简单溶解于有机溶剂直接转化为胶体MOF聚合物悬浮液(油墨)。将新型胶体MOF聚合物油墨直接用作混合基质膜的最终添加剂,得到了前所未有的蛇皮微观结构,在1至7 wt%的极低且分散良好的MOF纳米晶体浓度下,对燃烧后烟道气中的CO2相对于N2表现出出色的选择性(>100)。这种新颖的方法带来了一种迄今报道的最通用的途径之一,可将任何MOF转化为更具功能性的形式,能够在商业规模上直接集成到任何传统聚合物技术中。