Ozcan Aydin, Semino Rocio, Maurin Guillaume, Yazaydin A Ozgur
Department of Chemical Engineering, University College London, London WC1E 7JE, U.K.
Institut Charles Gerhardt Montpellier, UMR 5253, CNRS, ENSCM, Université de Montpellier, Place E. Bataillon, 34095 Montpellier Cedex 05, France.
Chem Mater. 2020 Feb 11;32(3):1288-1296. doi: 10.1021/acs.chemmater.9b04907. Epub 2020 Jan 7.
Membrane-based separation technologies offer a cost-effective alternative to many energy-intensive gas separation processes, such as distillation. Mixed matrix membranes (MMMs) composed of polymers and metal-organic frameworks (MOFs) have attracted a great deal of attention for being promising systems to manufacture durable and highly selective membranes with high gas fluxes and high selectivities. Therefore, understanding gas transport through these MMMs is of significant importance. There has been longstanding speculation that the gas diffusion behavior at the interface formed between the polymer matrix and MOF particles would strongly affect the global performance of the MMMs due to the potential presence of nonselective voids or other defects. To shed more light on this paradigm, we have performed microsecond long concentration gradient-driven molecular dynamics (CGD-MD) simulations that deliver an unprecedented microscopic picture of the transport of H and CH as single components and as a mixture in all regions of the PIM-1/ZIF-8 membrane, including the polymer/MOF interface. The fluxes of the permeating gases are computed and the impact of the polymer/MOF interface on the H/CH permselectivity of the composite membrane is clearly revealed. Specifically, we show that the poor compatibility between PIM-1 and ZIF-8, which manifests itself by the presence of nonselective void spaces at their interface, results in a decrease of the H/CH permselectivity for the corresponding composite membrane as compared to the performances simulated for PIM-1 and ZIF-8 individually. We demonstrate that CGD-MD simulations based on an accurate atomistic description of the polymer/MOF composite is a powerful tool for characterization and understanding of gas transport and separation mechanisms in MMMs.
基于膜的分离技术为许多能源密集型气体分离过程(如蒸馏)提供了一种经济高效的替代方案。由聚合物和金属有机框架(MOF)组成的混合基质膜(MMM)作为制造具有高气通量和高选择性的耐用且高选择性膜的有前景的体系,已引起了广泛关注。因此,了解气体在这些MMM中的传输至关重要。长期以来一直有人推测,由于可能存在非选择性空隙或其他缺陷,聚合物基质与MOF颗粒之间形成的界面处的气体扩散行为会强烈影响MMM的整体性能。为了更深入地了解这一范式,我们进行了微秒级长时间的浓度梯度驱动分子动力学(CGD-MD)模拟,该模拟提供了H和CH作为单一组分以及作为混合物在PIM-1/ZIF-8膜的所有区域(包括聚合物/MOF界面)中传输的前所未有的微观图像。计算了渗透气体的通量,并清楚地揭示了聚合物/MOF界面对复合膜H/CH渗透选择性的影响。具体而言,我们表明PIM-1和ZIF-8之间的相容性差,这表现为它们界面处存在非选择性空隙空间,导致相应复合膜的H/CH渗透选择性相对于单独模拟的PIM-1和ZIF-8的性能有所降低。我们证明,基于对聚合物/MOF复合材料的准确原子描述的CGD-MD模拟是表征和理解MMM中气体传输和分离机制的有力工具。