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控制笼状和圆柱形介孔以及热/水热稳定骨架的通用且简单的方法。

General and simple approach for control cage and cylindrical mesopores, and thermal/hydrothermal stable frameworks.

作者信息

El-Safty Sherif A, Mizukami Fujio, Hanaoka Takaaki

机构信息

Laboratory for Membrane Chemistry, Tohoku Center, National Institute of Advanced Industrial Science and Technology (AIST), 4-2-1 Nigatake, Miyagino-ku, Sendai, 983-8551, Japan.

出版信息

J Phys Chem B. 2005 May 19;109(19):9255-64. doi: 10.1021/jp050304d.

Abstract

Highly ordered cage and cylindrical mesoporeous silica monoliths (HOM) with 2- and 3-dimensional (2D and 3D, respectively) structures, mesopore/micropore volumes, and thick-walled frameworks were successfully fabricated by instant direct templating of lyotropic phases of copolymer (EO(m)-PO(n)-EO(m)) surfactants. Large cage-like pores with uniform constriction sizes up to 10 nm and open cylindrical channel-like mesopores can be easily achieved by this simple and efficient synthesis design. Our results show that the cage-like pores could be fabricated at relatively lower copolymer concentrations used in the lyotropic phase domains at copolymer/TMOS ratios of 35 wt %. These ordered cage pore architectures underwent transition to open-cylindrical pores by increasing the copolymer concentration. High EO/PO block copolymers, in general, were crucially affected on the increase of the interior cavity sizes and on the stability of the cage mesopore characters. However, for F108 (EO(141)PO(44)EO(141)) systems, the fabrication of ordered and stable cage pore monoliths was achieved with significantly higher copolymer concentrations up to 90 wt %. Interestingly, the effective copolymer molecular nature was also observed in the ability to design various ordered mesophase geometries in large domain sizes. Our findings here show evidence that the synthetic strategy provides realistic control over a wide range of mesostructured phase geometries and their extended long-range ordering in the final replicas of the silica monolith frameworks. In addition, the HOM silica monoliths exhibited considerable structural stability against higher thermal temperature (up to 1000 degrees C) and longer hydrothermal treatment times under boiling water and steam. The remarkable structural findings of 3D frameworks, transparent monoliths, and micropores combined with large cage- and cylindrical-like mesopores are expected to find promising uses in materials chemistry.

摘要

通过对共聚物(EO(m)-PO(n)-EO(m))表面活性剂溶致相进行即时直接模板化,成功制备出具有二维和三维(分别为2D和3D)结构、介孔/微孔体积以及厚壁骨架的高度有序笼状和柱状介孔二氧化硅整体材料(HOM)。通过这种简单高效的合成设计,能够轻松实现具有高达10 nm均匀收缩尺寸的大笼状孔以及开放的圆柱状通道介孔。我们的结果表明,在共聚物/四甲氧基硅烷(TMOS)比例为35 wt%的溶致相区域中,使用相对较低的共聚物浓度即可制备出笼状孔。通过增加共聚物浓度,这些有序的笼状孔结构会转变为开放的圆柱状孔。一般来说,高EO/PO嵌段共聚物对内腔尺寸的增加以及笼状介孔特征的稳定性有至关重要的影响。然而,对于F108(EO(141)PO(44)EO(141))体系,在高达90 wt%的显著更高共聚物浓度下实现了有序且稳定的笼状孔整体材料的制备。有趣的是,在设计大尺寸区域内各种有序介相几何形状的能力方面,也观察到了有效的共聚物分子特性。我们在此的发现表明,该合成策略能够对二氧化硅整体材料骨架最终复制品中的广泛介观结构相几何形状及其扩展的长程有序性进行实际控制。此外,HOM二氧化硅整体材料在高达1000摄氏度的较高温度以及在沸水和蒸汽下更长的水热处理时间下表现出相当的结构稳定性。三维骨架、透明整体材料以及微孔与大笼状和圆柱状介孔相结合的显著结构发现有望在材料化学中找到有前景的应用。

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