膜
纳米尺度
纳米技术
成核
制作
材料科学
超分子化学
动力学
离子键合
分子动力学
微流控
聚合物
离子
分子扩散
纳米流体学
离子液体
自组装
分子
封装(网络)
化学
扩散
化学物理
纳米孔
作者
Qian Chen,Mei-Ling Liu,Sheng Jiang,Yu-Tong Zhang,Yue-Wen Jia,Wei-Xing Li,Shi-Peng Sun,Weihong Xing
标识
DOI:10.1038/s41467-026-71107-6
摘要
Biomimetic ion channels demonstrate potential for nanoscale molecular separations by leveraging their unique confined recognition capabilities. Metal-organic framework (MOF)-based mixed matrix membranes (MMMs) offer a promising platform that integrates the ångström-scale pores of MOFs with polymer processability. However, slow MOF nucleation kinetics and weak interfacial interactions impede precise channel formation. Here, we present a confined molecular encapsulation (CME) strategy that synchronously regulates MOF nucleation kinetics and interfacial interactions, transforming precursors into flexible gel-network metal-organic gels (MOGs) via supramolecular assembly. Molecular dynamics simulations and in-situ optical detection show that stronger MOG-polymer interactions and confined diffusion govern enhanced interfacial compatibility and uniform dispersion. Optimized MMMs deliver a F⁻/Cl⁻ separation ratio of 32.0 with ionic current rectification. COMSOL simulations demonstrate that synergistic coupling of aligned MOF arrays and uniform surface charge enables efficient ion differentiation. This CME strategy establishes a versatile nanoscale platform for fabricating high-performance monovalent ion-selective membranes and nanofluidic devices.
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