膜
三乙醇胺
渗透
材料科学
聚酯纤维
羧酸盐
选择性
化学工程
多孔性
气体分离
多孔介质
聚合物
纳米技术
接口(物质)
分子
热的
粒子(生态学)
合成膜
有机化学
作者
C W,Ning Li,LW Xu,S Wang,J Q Du,Jiandong Pang,Aibing Chen,Zhihua Qiao,Jingwei Hou
标识
DOI:10.1038/s41467-026-75937-2
摘要
Metal-organic frameworks (MOFs) are promising membrane materials for molecular separations because of their well-defined porosity and tunable chemistry. However, their separation performance is often limited by grain boundaries and interfacial defects that introduce non-selective transport pathways. Here, we proposed an in-situ interfacial polyesterification-assisted bonding strategy for constructing MOF-rich self-standing membranes using triethanolamine (TEOA) in the UiO-66 system. Under thermal treatment, TEOA is proposed to induce localized interfacial reactions that generate anchored polyester species at MOF-MOF contacts, thereby enhancing particle bonding and suppressing non-selective interface defects. The resulting UiO-66 polyester membrane exhibits 92.7 wt% UiO-66 loading, a CO2 permeance of 1310 GPU, and a CO2/N2 selectivity of 38, surpassing the upper bound for this gas pair, with the selectivity arising primarily from solubility-selective transport. In addition, the UiO-66 polyester membrane shows good moisture tolerance and performance regenerability, further suggesting that the polyesterified interface helped mitigate humidity-induced interfacial deterioration and suppress particle-interface defects. A similar strategy is also demonstrated in the MOF-808, UiO-67, and MIL-101 systems, indicating representative applicability within a subset of carboxylate-based MOFs. These results highlight the importance of interfacial chemical engineering in constructing defect-suppressed, highly MOF-rich separation membranes. Precise control of interfaces is crucial for high-performance metal-organic framework membranes. Here, the authors use in-situ polyesterification to engineer carboxylate MOF-MOF interfaces, suppress defects and enable efficient gas separation.
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