Catalysis Engineering, Department of Chemical Engineering, Delft University of Technology, Van der Maasweg 9, 2629HZ, Delft, The Netherlands.
EaStCHEM School of Chemistry, University of St Andrews, Purdie Building, North Haugh, St. Andrews, Fife, KY16 9ST, UK.
Chemistry. 2018 Sep 3;24(49):12796-12800. doi: 10.1002/chem.201803006. Epub 2018 Aug 8.
Membrane separation for gas purification is an energy-efficient and environment-friendly technology. However, the development of high performance membranes is still a great challenge. In principle, mixed matrix membranes (MMMs) have the potential to overcome current materials limitations, but in practice there is no straightforward method to match the properties of fillers and polymers (the main components of MMMs) in such a way that the final membrane performance reflects the high performance of the microporous filler and the processability of the continuous polymer phase. This issue is especially important when high flux polymers are utilized. In this work, we demonstrate that the use of small amounts of a glassy polymer in combination with high performance PIM-1 allow for the preparation of metal-organic framework (MOF)-based MMMs with superior separation properties and low aging rates under humid conditions, meeting the commercial target for post-combustion CO capture.
膜分离技术在气体净化方面具有节能和环保的特点。然而,开发高性能膜仍然是一个巨大的挑战。原则上,混合基质膜(MMMs)有可能克服当前材料的局限性,但实际上,没有一种直接的方法可以使填料和聚合物(MMMs 的主要成分)的性能相匹配,从而使最终膜的性能反映出微孔填料的高性能和连续聚合物相的可加工性。当使用高通量聚合物时,这个问题尤其重要。在这项工作中,我们证明了少量玻璃态聚合物的使用与高性能 PIM-1 的结合,可以制备出基于金属-有机骨架(MOF)的 MMMs,这些 MMMs 在潮湿条件下具有优异的分离性能和低老化率,满足了后燃烧 CO2 捕获的商业目标。