Lehrstuhl für Chemische Reaktionstechnik, Friedrich-Alexander-Universität Erlangen-Nürnberg (FAU), Egerlandstr. 3, 91058 Erlangen, Germany.
Chem Soc Rev. 2016 Jun 13;45(12):3353-76. doi: 10.1039/c5cs00599j.
'Hierarchy' is a property which can be attributed to a manifold of different immaterial systems, such as ideas, items and organisations or material ones like biological systems within living organisms or artificial, man-made constructions. The property 'hierarchy' is mainly characterised by a certain ordering of individual elements relative to each other, often in combination with a certain degree of branching. Especially mass-flow related systems in the natural environment feature special hierarchically branched patterns. This review is a survey into the world of hierarchical systems with special focus on hierarchically porous zeolite materials. A classification of hierarchical porosity is proposed based on the flow distribution pattern within the respective pore systems. In addition, this review might serve as a toolbox providing several synthetic and post-synthetic strategies to prepare zeolitic or zeolite containing material with tailored hierarchical porosity. Very often, such strategies with their underlying principles were developed for improving the performance of the final materials in different technical applications like adsorptive or catalytic processes. In the present review, besides on the hierarchically porous all-zeolite material, special focus is laid on the preparation of zeolitic composite materials with hierarchical porosity capable to face the demands of industrial application.
“层次结构”是一种可以归因于不同非物质系统的属性,例如思想、物品和组织,或者是像生物系统或人工制造的结构这样的物质系统。“层次结构”的属性主要表现为各个元素之间的某种相对顺序,通常与一定程度的分支相结合。特别是自然环境中与质量流相关的系统具有特殊的层次分支模式。这篇综述是对层次系统世界的调查,特别关注层次多孔沸石材料。根据各自孔系统内的流动分布模式,提出了一种层次孔隙度的分类方法。此外,本综述可以作为一个工具箱,提供几种合成和后合成策略,以制备具有定制层次孔隙度的沸石或含沸石材料。通常情况下,这些策略及其背后的原理是为了提高最终材料在不同技术应用(如吸附或催化过程)中的性能而开发的。在本综述中,除了层次多孔全沸石材料外,还特别关注具有层次多孔性的沸石复合材料的制备,以满足工业应用的需求。