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首页> 外文期刊>Microporous and mesoporous materials: The offical journal of the International Zeolite Association >Silicate ionic liquid synthesis of zeolite merlinoite: Crystal size control from crystalline nanoaggregates to micron-sized single-crystals
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Silicate ionic liquid synthesis of zeolite merlinoite: Crystal size control from crystalline nanoaggregates to micron-sized single-crystals

机译:沸石蒙脱石的硅酸盐离子液体合成:从晶体纳米聚集体到微米级单晶的晶体尺寸控制

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A new procedure for zeolite synthesis based on a silicate ionic liquid is reported. The method consists of a two-step precursor preparation. In the first step, a liquid silicate is prepared by hydrolyzing tetraethylorthosilicate (TEOS) with KOH-H2O mixture, which induces coacervation resolved into full phase demixing and subsequent separation from a water-ethanol phase by simple decantation. In the second step, an appropriate amount of an alkaline aluminate is mixed with the first liquid silicate, avoiding therefore precipitation. To the best of our knowledge, this represents the first example of homogeneous liquid synthesis, and not a clear sol or a gel, of an Al-rich zeolite, free of organic template. The approach is exemplified by the synthesis of merlinoite with potassium hydroxide as mineral base and could be extended to other zeolitic systems by varying the chemical composition and the nature of the alkali cation. The synthesis yield depends on the Al content and the crystalline products showed a very large range of particle sizes varying from nanometer scale to about a hundred microns when increasing the Al concentration. Crystallization proceeds most likely through nucleation from a liquid where nucleation and growth directly affects the ultimate crystal size and morphology. (C) 2014 Elsevier Inc. All rights reserved.
机译:报道了一种基于硅酸盐离子液体的合成沸石的新方法。该方法包括两步前体制备。在第一步中,通过用KOH-H2O混合物水解原硅酸四乙酯(TEOS)来制备液态硅酸盐,这将导致凝聚层分解为全相混合,然后通过简单倾析将其与水-乙醇相分离。在第二步骤中,将适量的碱性铝酸盐与第一液体硅酸盐混合,从而避免沉淀。就我们所知,这是不含有机模板的富铝沸石均质液体合成的第一个示例,而不是透明的溶胶或凝胶。该方法以以氢氧化钾作为矿物碱的水铁矿的合成为例,并且可以通过改变碱金属阳离子的化学组成和性质扩展到其他沸石体系。合成产率取决于Al含量,并且当增加Al浓度时,结晶产物显示出很大的粒径范围,从纳米级变化到约一百微米。结晶最有可能通过液体中的成核作用进行,其中成核和生长直接影响最终的晶体尺寸和形态。 (C)2014 Elsevier Inc.保留所有权利。

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