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本文引用的文献

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A neutral templating route to mesoporous molecular sieves.介孔分子筛的中性模板法。
Science. 1995 Feb 10;267(5199):865-7. doi: 10.1126/science.267.5199.865.
2
Mesostructure design with gemini surfactants: supercage formation in a three-dimensional hexagonal array.介观结构设计与双子表面活性剂:在三维六方阵列中超笼的形成。
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Templating of mesoporous molecular sieves by nonionic polyethylene oxide surfactants.介孔分子筛的非离子型聚氧化乙烯表面活性剂模板法。
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4
MCM-48-like large mesoporous silicas with tailored pore structure: facile synthesis domain in a ternary triblock copolymer-butanol-water system.具有定制孔结构的类MCM-48大孔介孔二氧化硅:三元三嵌段共聚物-丁醇-水体系中的简便合成区域
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具有三维虫孔框架结构的大孔介孔二氧化硅

Large-Pore Mesoporous Silica with Three-Dimensional Wormhole Framework Structures.

作者信息

Park In, Pinnavaia Thomas J

机构信息

Department of Chemistry, Michigan State University, East Lansing, Michigan 48824, USA.

出版信息

Microporous Mesoporous Mater. 2009 Feb 1;118(1-3):239. doi: 10.1016/j.micromeso.2008.08.027.

DOI:10.1016/j.micromeso.2008.08.027
PMID:20126285
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2663960/
Abstract

Large-pore mesoporous silica with 3D wormhole framework structures (denoted MSU-J) are prepared through a supramolecular hydrogen-bonding assembly pathway from low-cost sodium silicate as the silica source and commercially available mono- and triamine Jeffamine and Surfonamine surfactants as structure-directing porogens. The calcined mesostructures exhibit large pore sizes (up to 8.2 nm), surface areas (632-1030 m(2)/g) and pore volumes (0.5-2.0 cm(3)/g), depending on the surfactant chain length and synthesis temperature (25-65 °C). The textural properties of these new wormhole mesostructures are comparable to those of hexagonal SBA-15 derivatives and large pore MCM-48. However, unlike the SBA-15 structure type, wherein the 3D pore network is formed by connecting 1D cylindrical mesopores through micropores, MSU-J mesophases have wormhole framework structures containing fully interconnected 3D mesopores that can minimize the diffusion limitations often encountered in adsorption and chemical catalysis. Also, unlike large pore MCM-48, which requires cost-intensive tetraethylorthosilicate as a silica source and the use of a co-surfactant as a pore expander under strong acid conditions, MSU-J mesostructures are assembled from low cost sodium silicate in the presence of a single Jeffamine or Surfonamine porogen at near-neutral pH.

摘要

通过超分子氢键组装途径,以低成本的硅酸钠为硅源,以市售的单胺和三胺类Jeffamine和Surfonamine表面活性剂作为结构导向致孔剂,制备了具有三维虫孔框架结构的大孔介孔二氧化硅(记为MSU-J)。煅烧后的介孔结构具有较大的孔径(高达8.2 nm)、表面积(632 - 1030 m²/g)和孔体积(0.5 - 2.0 cm³/g),这取决于表面活性剂链长和合成温度(25 - 65°C)。这些新型虫孔介孔结构的织构性质与六方SBA - 15衍生物和大孔MCM - 48相当。然而,与SBA - 15结构类型不同,在SBA - 15结构类型中,三维孔网络是通过微孔连接一维圆柱形介孔形成的,而MSU - J介相具有包含完全互连的三维介孔的虫孔框架结构,这可以最大限度地减少在吸附和化学催化中经常遇到的扩散限制。此外,与大孔MCM - 48不同,MCM - 48需要成本高昂的原硅酸四乙酯作为硅源,并在强酸条件下使用共表面活性剂作为孔扩张剂,而MSU - J介孔结构是在接近中性pH值的条件下,由低成本的硅酸钠在单一Jeffamine或Surfonamine致孔剂存在下组装而成。