材料科学
气体分离
分子筛
微型多孔材料
聚酰亚胺
化学工程
膜
热稳定性
巴勒
碳纤维
多孔性
热的
空气分离
化学稳定性
高分子化学
吸附
聚合物
分子
热处理
渗透
膜技术
纳米技术
双层
多孔介质
有机化学
作者
M. Liu,Jiongcai Chen,Huishan Hu,W. M. Liu,Wanyi TAN,Yong Min
标识
DOI:10.1021/acsami.5c25304
摘要
Carbon molecular sieve membranes (CMSMs) have attracted growing attention in gas separation, attributed to their excellent thermal stability and chemical resistance. The structural characteristics of polymeric precursors significantly influence the pore size, pore shape, and so on, which govern gas separation performance. Herein, CMSMs with favorable gas separation performance are developed by using spirobifluorene-based polyimide precursors. The bulky rigid spirobifluorene groups effectively suppress most pore collapse during pyrolysis, endowing CMSMs with a high gas permeability. Simultaneously, most micropores (7-9 Å) shrink into ultramicropores (3-7 Å), narrowing the pore size distribution. As a result, the as-prepared CMSM shows favorable pure gas separation performance with H2, He, and CO2 permeabilities of 5002.9, 2017.2, and 1900.2 Barrer and corresponding α (H2/CH4), α (He/CH4), and α (CO2/CH4) up to 1916.8, 772.9, and 728.0, respectively. Furthermore, the structural characteristics of the precursors not only influence the plate packing of CMSMs but also modulate the graphitization degree, affecting their storage stability.
科研通智能强力驱动
Strongly Powered by AbleSci AI