介孔材料
材料科学
纳米技术
介孔有机硅
胶束
两亲性
金属有机骨架
大规模运输
自组装
化学工程
共聚物
介孔二氧化硅
聚合物
催化作用
有机化学
水溶液
吸附
化学
工程类
工程物理
复合材料
作者
Yingji Zhao,Zhi Qiang Gao,Ning Chen,Yusuke Asakura,Ho Ngoc Nam,Quan Manh Phung,Yunqing Kang,Mandy H. M. Leung,Dong Jiang,Lei Fu,Lijin Huang,Toru Asahi,Yusuke Yamauchi
标识
DOI:10.1002/adma.202508105
摘要
Abstract Designing 2D mesoporous metal‐organic framework (MOF) nanosheets to overcome the limitations of bulk MOF counterparts, with a focus on enabling smooth mass transport, presents an attractive yet challenging endeavor. Here, a novel bottom‐up interface‐directed co‐assembly method is presented for the synthesis of ultrathin 2D mesoporous UiO‐66(Ce) nanosheets. The method utilizes an interface‐directed co‐assembly of amphiphilic perfluorooctanoic acid‐induced lipid bilayers and spherical micelles from PS‐ b ‐PEO block copolymers to form unique 2D sandwich‐like assemblies that guide the creation of 2D mesoporous UiO‐66(Ce). The resultant 2D mesoporous UiO‐66(Ce), with ≈23 nm pore diameters and a thickness that can be tuned from 3 to 150 nm, represents a substantial advancement in the application of MOFs for environmental remediation. As a model reaction, the U(VI) photoreduction benefits from the through‐mesopores of its 2D morphology, which are absent in previously reported UiO‐66(Ce), as they shorten the diffusion path, thereby improving mass transport and accessibility to active sites. This report demonstrates the significant role of existing mesopores in MOFs and the shape control of MOFs.
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