Synthesis of Nano-crystalline Zeolites and Applications to Zeolite Membranes

T. Tago, Y. Nakasaka, T. Masuda
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引用次数: 5

Abstract

Zeolites are crystalline aluminosilicate materials and possess intracrystalline pores and nanospaces of similar sizes to the molecules of the lighter hydrocarbons. Moreover, zeolites have strong acid sites on the nanopore surfaces within and on the external surfaces of the crystalline structure. These properties enable zeolites to be used as in reaction and separation processes, and these potential uses have led to the development of zeolite-based structured materials, such as zeolite films and membranes1)~3). Zeolite membranes combine the properties of zeolites with those of inorganic membranes, so are attractive materials for various applications, such as selective reaction membranes4),5) and separation membranes6)~9). ZSM-5 zeolite membranes were first prepared by Sano et al.10),11), and a great deal of subsequent research has focused on the use of zeolite membranes for reaction and separation. To prepare a zeolite membrane by hydrothermal synthesis, zeolite seed crystals are deposited on a porous support, then secondary growth of the zeolite occurs to form the zeolite membrane. The uniformity of the membrane affects the reaction/separation properties, so the seeding of the zeolite crystals and the secondary growth process must occur uniformly12)~16). Therefore, nano-sized zeolite crystals are expected to have good properties as seed crystals, because the smaller size allows for greater control of the seeding and growth processes. Mono-dispersed zeolite nanocrystals are expected to form uniform zeolite membranes. This review describes a method for preparing nanocrystalline zeolites in a solution consisting of a surfactant, an organic solvent, and water (called the emulsion method17)~21)), and a method based on the catalytic cracking of silane22) (called the CCS method) for the regioselective deactivation of acid sites using silane compounds with various organic substituents. An MFI zeolite (ZSM-5) membrane was applied to the reaction of methanol to olefins23),24), to investigate the effect of the regioselective deactivation of acid sites by the CCS method on the olefin yields. A hydrophilic silicalite-1 membrane25) was prepared using silicalite-1 nanocrystals, to examine the effect of the crystal size on the separation properties26),27).
纳米晶沸石的合成及其在沸石膜中的应用
沸石是晶体铝硅酸盐材料,具有与较轻的碳氢化合物分子相似大小的晶内孔和纳米空间。此外,沸石在晶体结构的内外表面的纳米孔表面上都有强酸位点。这些特性使沸石可以用于反应和分离过程,这些潜在的用途导致了沸石基结构材料的发展,如沸石薄膜和膜。沸石膜结合了沸石和无机膜的特性,是一种具有广泛应用前景的材料,如选择性反应膜、选择性反应膜和选择性分离膜。ZSM-5沸石膜最早是由Sano等人10),11)制备的,随后大量的研究集中在利用沸石膜进行反应和分离。水热法制备沸石膜,将沸石种子晶体沉积在多孔载体上,沸石二次生长形成沸石膜。膜的均匀性影响反应/分离性能,因此沸石晶体的播种和二次生长过程必须均匀进行[12]~[16]。因此,纳米级沸石晶体有望具有良好的种子晶体性能,因为较小的尺寸可以更好地控制种子和生长过程。单分散的沸石纳米晶有望形成均匀的沸石膜。本文介绍了在由表面活性剂、有机溶剂和水组成的溶液中制备纳米晶沸石的方法(称为乳液法)和基于硅烷催化裂化的方法(称为CCS法),该方法使用具有各种有机取代基的硅烷化合物对酸位进行区域选择性失活。将MFI沸石(ZSM-5)膜应用于甲醇制烯烃反应23),24),考察了CCS法对酸位区域选择性失活对烯烃收率的影响。用硅烷-1纳米晶体制备了亲水硅烷-1膜(25),考察了晶体尺寸对分离性能的影响(26),27)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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