Liu Xin, Liu Peiren, Wang Haochen, Khashab Niveen M
Smart Hybrid Materials Laboratory (SHMs), Department of Chemistry, Division of Physical Science and Engineering, King Abdullah University of Science and Technology (KAUST), Thuwal, 23955-6900, Kingdom of Saudi Arabia.
Adv Mater. 2025 Apr 24:e2500310. doi: 10.1002/adma.202500310.
Advancements in membrane-based separation hinge on the design of materials that transcend conventional limitations. Microporous materials, including metal-organic frameworks (MOFs), covalent-organic frameworks (COFs), macrocycles, and porous organic cages (POCs) offer unprecedented control over pore architecture, chemical functionality, and transport properties, making them promising candidates for next-generation membrane technologies. The well-defined and tunable micropores provide a pathway to directly address the permeability-selectivity trade-off inherent in conventional polymer membranes. Here, this review explores the latest advancements in these four representative microporous membranes, emphasizing their breakthroughs in hydrocarbon separation, liquid-phase molecular sieving, and ion-selective transport, particularly focusing on their structure-performance relationships. While their tailored structures enable exceptional performance, practical adoption requires overcoming hurdles in scalability, durability, and compatibility with industrial processes. By offering insights into membrane structure optimization and innovative design strategies, this review provides a roadmap for advancing microporous membranes from laboratory innovation to real-world implementation, ultimately supporting global sustainability goals through energy-efficient separation processes.
基于膜的分离技术的进步取决于超越传统限制的材料设计。微孔材料,包括金属有机框架(MOF)、共价有机框架(COF)、大环化合物和多孔有机笼(POC),在孔结构、化学功能和传输特性方面提供了前所未有的控制能力,使其成为下一代膜技术的有前途的候选材料。定义明确且可调节的微孔提供了一条直接解决传统聚合物膜中固有的渗透性-选择性权衡问题的途径。在此,本综述探讨了这四种代表性微孔膜的最新进展,强调了它们在烃类分离、液相分子筛和离子选择性传输方面的突破,特别关注它们的结构-性能关系。虽然它们量身定制的结构能够实现卓越的性能,但实际应用需要克服可扩展性、耐久性以及与工业过程兼容性方面的障碍。通过深入探讨膜结构优化和创新设计策略,本综述为将微孔膜从实验室创新推进到实际应用提供了路线图,最终通过节能分离过程支持全球可持续发展目标。