Immobilizing Functional Sites into Isoreticular Zinc-Based MOFs To Tune Pore Environment for Highly Efficient Methanol-to-Olefins (MTO) Product Separation
作者:Jianyun Li, Zhaohui Shi, Xin Liu, Lirong Zhang, Yunling Liu · 发表于:ACS Materials Letters · 年份:2025 · DOI:10.1021/acsmaterialslett.5c00287 · 被引用次数:11 · 研究领域:Metal-Organic Frameworks: Synthesis and Applications、Catalytic Processes in Materials Science、Gas Sensing Nanomaterials and Sensors
The separation of C 3 H 6 /C 2 H 4 mixtures is a critical process in MTO reactions, which remains a great challenge because of their similar physicochemical properties. Immobilizing functional groups in MOFs has emerged as an effective strategy for tuning pore environments and improving the C 3 H 6 /C 2 H 4 separation performance. Herein, two isoreticular and functionalized Zn-MOFs are successfully designed and constructed to separate MTO products, namely, CH 3 -decorated JLU-MOF125 and NH 2 -decorated JLU-MOF126 . The two MOFs feature moderate pore volumes, micropore structures, and rich N/O sites, which collectively contribute to exceptional C 3 H 6 /C 2 H 4 separation efficiency. Ultrahigh polymer-grade (>99.9%) C 2 H 4 (1146.1 and 1138.6 L/kg, respectively) can be obtained from the dynamic breakthrough experiments of JLU-MOF125 and JLU-MOF126, and 29.6 and 48.9 L/kg of C 3 H 6 (>99.5%) can be recovered, respectively. More importantly, both MOFs exhibit remarkable stability and the breakthrough curves remain nearly unchanged after 5 cycles, which makes them promising materials for the separation of MTO products in industrial application.