微型多孔材料
膜
聚合物
气体分离
化学工程
材料科学
分子筛
合成膜
高分子化学
化学
共价键
选择性
有机化学
催化作用
生物化学
工程类
作者
Xiuling Chen,Yanfang Fan,Lei Wu,Linzhou Zhang,Dong Guan,Canghai Ma,Nanwen Li
标识
DOI:10.1038/s41467-021-26379-5
摘要
Abstract High-performance membranes exceeding the conventional permeability-selectivity upper bound are attractive for advanced gas separations. In the context microporous polymers have gained increasing attention owing to their exceptional permeability, which, however, demonstrate a moderate selectivity unfavorable for separating similarly sized gas mixtures. Here we report an approach to designing polymeric molecular sieve membranes via multi-covalent-crosslinking of blended bromomethyl polymer of intrinsic microporosity and Tröger’s base, enabling simultaneously high permeability and selectivity. Ultra-selective gas separation is achieved via adjusting reaction temperature, reaction time and the oxygen concentration with occurrences of polymer chain scission, rearrangement and thermal oxidative crosslinking reaction. Upon a thermal treatment at 300 °C for 5 h, membranes exhibit an O 2 /N 2 , CO 2 /CH 4 and H 2 /CH 4 selectivity as high as 11.1, 154.5 and 813.6, respectively, transcending the state-of-art upper bounds. The design strategy represents a generalizable approach to creating molecular-sieving polymer membranes with enormous potentials for high-performance separation processes.
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