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有机-无机杂化介孔二氧化硅:功能化、孔径及形貌控制

Organic-inorganic hybrid mesoporous silicas: functionalization, pore size, and morphology control.

作者信息

Park Sung Soo, Ha Chang-Sik

机构信息

National Research Laboratory of Nano-Information Materials, Department of Polymer Science and Engineering, Pusan National University, Busan 609-735, Korea.

出版信息

Chem Rec. 2006;6(1):32-42. doi: 10.1002/tcr.20070.

Abstract

Topological design of mesoporous silica materials, pore architecture, pore size, and morphology are currently major issues in areas such as catalytic conversion of bulky molecules, adsorption, host-guest chemistry, etc. In this sense, we discuss the pore size-controlled mesostructure, framework functionalization, and morphology control of organic-inorganic hybrid mesoporous silicas by which we can improve the applicability of mesoporous materials. First, we explain that the sizes of hexagonal- and cubic-type pores in organic-inorganic hybrid mesoporous silicas are well controlled from 24.3 to 98.0 A by the direct micelle-control method using an organosilica precursor and surfactants with different alkyl chain lengths or triblock copolymers as templates and swelling agents incorporated in the formed micelles. Second, we describe that organic-inorganic hybrid mesoporous materials with various functional groups form various external morphologies such as rod, cauliflower, film, rope, spheroid, monolith, and fiber shapes. Third, we discuss that transition metals (Ti and Ru) and rare-earth ions (Eu(3+) and Tb(3+)) are used to modify organic-inorganic hybrid mesoporous silica materials. Such hybrid mesoporous silica materials are expected to be applied as excellent catalysts for organic reactions, photocatalysis, optical devices, etc.

摘要

介孔二氧化硅材料的拓扑设计、孔结构、孔径和形态是目前大分子催化转化、吸附、主客体化学等领域的主要问题。从这个意义上讲,我们讨论了有机-无机杂化介孔二氧化硅的孔径控制介观结构、骨架功能化和形态控制,通过这些方法我们可以提高介孔材料的适用性。首先,我们解释了通过使用有机硅前驱体和具有不同烷基链长度的表面活性剂或三嵌段共聚物作为模板,并将膨胀剂掺入形成的胶束中,采用直接胶束控制法,可以将有机-无机杂化介孔二氧化硅中六方型和立方型孔的尺寸很好地控制在24.3至98.0埃之间。其次,我们描述了具有各种官能团的有机-无机杂化介孔材料形成了各种外部形态,如棒状、菜花状、薄膜状、绳状、球状、整体状和纤维状。第三,我们讨论了过渡金属(Ti和Ru)和稀土离子(Eu(3+)和Tb(3+))用于改性有机-无机杂化介孔二氧化硅材料。这种杂化介孔二氧化硅材料有望作为有机反应、光催化、光学器件等的优异催化剂得到应用。

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