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首页> 外文期刊>Chemical science >Hierarchically tetramodal-porous zeolite ZSM-5 monoliths with template-free-derived intracrystalline mesopores
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Hierarchically tetramodal-porous zeolite ZSM-5 monoliths with template-free-derived intracrystalline mesopores

机译:具有不包含模板的晶内介孔的分层四峰多孔ZSM-5沸石整体

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摘要

In this work, we report a unique synthesis of hierarchical zeolite ZSM-5 monoliths using polyurethane foam (PUF) as a rigid scaffold through a simple steam-assisted crystallization (SAC) method. The resultant monolithic ZSM-5 with a well crystalline structure possesses unique tetra-modal porosity (macropore/ macropore/mesopore/micropore). The first modes of macroporosity (pore size of ~33 nm) is formed after the removal of the PUF scaffolds. The second set of macropores with a size of 0.2-1.7 μm originate from the aggregation of ZSM-5 nanocrystals (crystal size of ~500 nm) inside the macropores of the PUF scaffolds. The third level of porosity stems from the intracrystalline mesopores (~53 nm) in each ZSM-5 crystal, along with the fourth intrinsic microporosity of zeolites. The mesopores are derived from the voids formed in the initial dry precursors, which are transformed and preserved as intracrystalline mesopores in each zeolite crystal. This type of ZSM-5 monolith possesses a high macroporosity (75.2%) and mechanical stability (1.2 MPa). The total surface area of the monolithic ZSM-5 is ~226 m~2 g(-1) and the total pore volume is ~0.21 cm~3 g~(-1). The ZSM-5 monolith as a structured catalyst for methanol to propylene (MTP) conversion shows excellent catalytic performance with high methanol conversion (above 95%) and propylene selectivity (above 40%) at a high weight hourly space velocity (WHSV, 3.6 h~(-1)). Importantly, the diffusion efficiency of catalyst is remarkably improved. After reaction for 5 h, the selectivity of propylene reaches a steady state.
机译:在这项工作中,我们报告了通过简单的蒸汽辅助结晶(SAC)方法,使用聚氨酯泡沫(PUF)作为刚性支架,对ZSM-5分子筛沸石进行的独特合成。所得的具有良好晶体结构的整体式ZSM-5具有独特的四峰孔隙率(大孔/大孔/中孔/微孔)。去除PUF支架后,形成了第一个大孔模式(孔径约为33 nm)。第二组大小为0.2-1.7μm的大孔源自PUF支架大孔内部的ZSM-5纳米晶体的聚集(晶体大小约为500 nm)。第三层孔隙度来自每个ZSM-5晶体中的晶体内中孔(〜53 nm),以及第四种固有的沸石微孔度。中孔是从最初的干燥前体中形成的空隙中衍生出来的,这些空隙被转化并保存为每个沸石晶体中的晶体内中孔。这种类型的ZSM-5整料具有较高的大孔率(75.2%)和机械稳定性(1.2 MPa)。整体ZSM-5的总表面积为〜226 m〜2 g(-1),总孔体积为〜0.21 cm〜3 g〜(-1)。 ZSM-5整体结构作为甲醇到丙烯(MTP)转化的结构化催化剂显示了出色的催化性能,在高重量时空速(WHSV,3.6 h)下具有高甲醇转化率(95%以上)和丙烯选择性(40%以上) 〜(-1))。重要的是,催化剂的扩散效率显着提高。反应5小时后,丙烯的选择性达到稳态。

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