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用于制备多孔二氧化硅薄膜及原位功能化的功能性金属嵌段共聚物

Functional Metalloblock Copolymers for the Preparation and In Situ Functionalization of Porous Silica Films.

作者信息

Herzog Nicole, Hübner Hanna, Rüttiger Christian, Gallei Markus, Andrieu-Brunsen Annette

机构信息

Ernst-Berl Institut für Technische und Makromolekulare Chemie, Technical University of Darmstadt, Alarich-Weiss-Str. 4, D-64287 Darmstadt, Germany.

Chair in Polymer Chemistry, Saarland University, Campus Saarbrücken C4 2, 66123 Saarbrücken, Germany.

出版信息

Langmuir. 2020 Apr 21;36(15):4015-4024. doi: 10.1021/acs.langmuir.0c00245. Epub 2020 Apr 8.

Abstract

Stimuli-responsive mesoporous silica films were prepared by evaporation-induced self-assembly through the physical entrapment of a functional metalloblock copolymer structuring agent, which simultaneously served to functionalize the mesopore. After end-functionalization with a silane group, the applied functional metalloblock copolymers were covalently integrated into the silica mesopore wall. In addition, they were partly degraded after the formation of the mesoporous film, which enabled the precise design of accessible mesopores. These polymer-silica hybrid materials exhibited remarkable and gating ionic permselectivity and offer the potential for highly precise pore filling design and combination with high-throughput printing techniques. This in situ functionalization strategy of mesoporous silica using responsive metalloblock copolymers has the potential to improve how we approach the design of complex architectures at the nanoscale for tailored transport. This functionalization strategy paves the way for a variety of technologies based on molecular transport in nanoscale pores, including separation, sensing, catalysis, and energy conversion.

摘要

通过蒸发诱导自组装,利用功能性金属嵌段共聚物结构剂的物理包埋制备了刺激响应性介孔二氧化硅薄膜,该结构剂同时用于使介孔功能化。在用硅烷基进行末端功能化后,所应用的功能性金属嵌段共聚物被共价整合到二氧化硅介孔壁中。此外,它们在介孔薄膜形成后部分降解,这使得能够精确设计可及的介孔。这些聚合物-二氧化硅杂化材料表现出显著的门控离子渗透选择性,并为高精度的孔填充设计以及与高通量印刷技术的结合提供了潜力。这种使用响应性金属嵌段共聚物对介孔二氧化硅进行原位功能化的策略,有可能改进我们在纳米尺度上设计用于定制传输的复杂结构的方法。这种功能化策略为基于纳米孔中分子传输的各种技术铺平了道路,包括分离、传感、催化和能量转换。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b6b3/7360126/9ecf2daef8ee/la0c00245_0006.jpg

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