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Synthesis Transfer and Gas Separation Characteristics of MOF-Templated Polymer Membranes

机译:MOF模板聚合物膜的合成转移和气体分离特性

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摘要

This paper discusses the potential of polymer networks, templated by crystalline metal–organic framework (MOF), as novel selective layer material in thin film composite membranes. The ability to create mechanically stable membranes with an ultra-thin selective layer of advanced polymer materials is highly desirable in membrane technology. Here, we describe a novel polymeric membrane, which is synthesized via the conversion of a surface anchored metal–organic framework (SURMOF) into a surface anchored gel (SURGEL). The SURGEL membranes combine the high variability in the building blocks and the possibility to control the network topology and membrane thickness of the SURMOF synthesis with high mechanical and chemical stability of polymers. Next to the material design, the transfer of membranes to suitable supports is also usually a challenging task, due to the fragile nature of the ultra-thin films. To overcome this issue, we utilized a porous support on top of the membrane, which is mechanically stable enough to allow for the easy membrane transfer from the synthesis substrate to the final membrane support. To demonstrate the potential for gas separation of the synthesized SURGEL membranes, as well as the suitability of the transfer method, we determined the permeance for eight gases with different kinetic diameters.
机译:本文讨论了由晶体金属-有机骨架(MOF)模板化的聚合物网络作为薄膜复合膜中新型选择性层材料的潜力。在膜技术中,非常需要具有由先进聚合物材料制成的超薄选择性层的机械稳定膜的能力。在这里,我们描述了一种新型的聚合物膜,它是通过将表面锚定的金属有机骨架(SURMOF)转化为表面锚定的凝胶(SURGEL)来合成的。 SURGEL膜将构件的高可变性与控制SURMOF合成的网络拓扑和膜厚度的可能性以及聚合物的高机械和化学稳定性结合在一起。除了材料设计之外,由于超薄薄膜的易碎特性,将膜转移到合适的载体上通常也是一项艰巨的任务。为了克服这个问题,我们在膜的顶部使用了多孔支撑物,该支撑物在机械上足够稳定,可以轻松地将膜从合成底物转移到最终的膜支撑物上。为了证明合成的SURGEL膜的气体分离潜力以及转移方法的适用性,我们确定了8种具有不同动力学直径的气体的渗透率。

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