Department of Production Engineering, Faculty of Mechanical Engineering and Design, Kaunas University of Technology, LT-51424 Kaunas, Lithuania.
Lithuanian Energy Institute, Laboratory of Heat Equipment Research and Testing, Breslaujos 3, LT 44403, Kaunas, Lithuania.
Chemosphere. 2024 Jun;358:142166. doi: 10.1016/j.chemosphere.2024.142166. Epub 2024 Apr 27.
The growing demand for sustainable and efficient gas separation technologies has prompted the exploration of advanced materials to enhance the gas permeability and selectivity. Polyethersulfone (PES) membranes are widely used in gas separation, gas upgrading, and clean energy production owing to their environmental friendliness and low cost. However, their gas permeability and selectivity can be further improved for commercial application. This study explored the incorporation of 10 wt % of MIL-68(ln)-NH2 into PES membranes using a phase-inversion approach to enhance gas permeability and selectivity. The morphological, structural, and thermal properties of the resulting MOF/PES membrane were characterized using SEM, AFM, BET, XRD, FTIR, and TGA-DTG. Gas permeation experiments were conducted using different gases (CO2, N2, CH4, and H2) under different heating conditions (20-60 °C) to evaluate the gas permeability and selectivity of the MOF/PES membrane. The results showed that the incorporation of MOF into the mixed matrix membrane (MMMs) led to a 9% increase in porosity, 87% reduction in roughness, and 32% decrease in pore size compared to neat PES membranes. Significant changes in the morphology, crystallinity, and thermal stability were observed, with notable improvements of up to 22%. Moreover, the MOF/PES membrane exhibited high gas permeability (CO2 = 124656, N2 = 83650, CH4 = 159298, and H2 = 427075 Barrer) and selectivity (H2/N2 = 5.7, H2/CO2 = 4, CH4/N2 = 2, and CH4/CO2 = 1.7) for flammable gases. The optimal gas separation performance was observed at 20 °C and 60 °C for H2/N2 and H2/CO2 separation, respectively. These findings demonstrate the potential of MOF-based PES membranes for gas separation applications, particularly in H2 purification.
对可持续和高效气体分离技术的需求不断增长,促使人们探索先进材料以提高气体渗透性和选择性。聚醚砜(PES)膜由于其环保性和低成本而广泛应用于气体分离、气体升级和清洁能源生产。然而,为了商业应用,其气体渗透性和选择性可以进一步提高。本研究通过相转化法将 10wt%的 MIL-68(ln)-NH2 掺入 PES 膜中,以提高气体渗透性和选择性。采用 SEM、AFM、BET、XRD、FTIR 和 TGA-DTG 对所得 MOF/PES 膜的形态、结构和热性能进行了表征。在不同加热条件(20-60°C)下,使用不同气体(CO2、N2、CH4 和 H2)进行气体渗透实验,以评估 MOF/PES 膜的气体渗透性和选择性。结果表明,与纯 PES 膜相比,MOF 的掺入使混合基质膜(MMMs)的孔隙率增加了 9%,粗糙度降低了 87%,孔径减小了 32%。观察到形态、结晶度和热稳定性发生了显著变化,最大改善可达 22%。此外,MOF/PES 膜表现出高气体渗透性(CO2=124656,N2=83650,CH4=159298,H2=427075 Barrer)和选择性(H2/N2=5.7,H2/CO2=4,CH4/N2=2,CH4/CO2=1.7)对于易燃气体。在 20°C 和 60°C 下,H2/N2 和 H2/CO2 分离的最佳气体分离性能分别观察到。这些发现表明 MOF 基 PES 膜在气体分离应用中的潜力,特别是在 H2 纯化方面。