溶解
微型多孔材料
膜
渗透
层状结构
化学工程
润湿
分子
化学
图层(电子)
材料科学
结晶学
物理化学
有机化学
生物化学
工程类
作者
Yihao Chen,Jingjing Chen,Chongchong Chen,Xiaoli Wu,Yifan Li,Jie Zhang,Jingtao Wang
摘要
Abstract Lamellar membranes, especially assembled by microporous framework nanosheets, have excited interest for fast molecular permeation. However, the underlying molecular dissolution behaviors on membrane surface, especially at pore entrances, remain unclear. Here, hierarchical metal–organic framework (MOF) lamellar membranes with 7 nm‐thick surface layer and 553 nm‐thick support layer are prepared. Hydrophilic (–NH 2 ) or hydrophobic (–CH 3 ) groups are decorated at pore entrances on surface layer to manipulate wettability, while –CH 3 groups on support layer provide comparable, low‐resistance paths. We demonstrate that molecular dissolution behaviors are determined by molecule–molecule and molecule–pore interactions, derived from intrinsic parameters of molecule and membrane. Importantly, two dissolution model equations are established: for hydrophobic membrane surface, dissolution activation energy ( E S ) obeys E S = K m ln[( γ L ‐ γ C ) μd 2 ], while turns to E S = K a ln[( γ L ‐ γ C ) δ e μd 2 ] for hydrophilic one. Particularly, hydrophilic pore entrances exert strong interaction with polar molecules, thus compensating the energy consumed by molecule rearrangement, giving fast permeation (>270 L m −2 h −1 bar −1 ).
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