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Design and fabrication of zeolite macro- and micromembranes.

机译:分子筛和大分子膜的设计和制造。

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The chemical nature of the support surface influences zeolite nucleation, crystal growth and elm adhesion. It had been demonstrated that chemical modification of support surface can significantly alter the zeolite film and has a good potential for large-scale applications for zeolite membrane production. The incorporation of titanium and vanadium metal ions into the structural framework of MFI zeolite imparts the material with catalytic properties. The effects of silica and metal (i.e., Ti and V) content, template concentration and temperature on the zeolite membrane growth and morphology were investigated. Single-gas permeation experiments were conducted for noble gases (He and Ar), inorganic gases (H2, N2, SF6) and hydrocarbons (methane, n-C4, i-C4) to determine the separation performance of these membranes.; Using a new fabrication method based on microelectronic fabrication and zeolite thin film technologies, complex microchannel geometry and network (5 μm), as well as zeolite arrays (10 μm) were successfully fabricated onto highly orientated supported zeolite films. The zeolite micropatterns were stable even after repeated thermal cycling between 303 K and 873 K for prolonged periods of time. This work also demonstrates that zeolites (i.e., Sil-1, ZSM-5 and TS-1) can be employed as catalyst, membrane or structural materials in miniature chemical devices. Traditional semiconductor fabrication technology was employed in micromachining the device architecture. Four strategies for the manufacture of zeolite catalytic microreactors were discussed: zeolite powder coating, uniform zeolite film growth, localized zeolite growth, and etching of zeolite-silicon composite film growth inhibitors. Silicalite-1 was also prepared as free-standing membrane for zeolite membrane microseparators.
机译:载体表面的化学性质影响沸石成核,晶体生长和榆木粘附。已经证明,载体表面的化学改性可以显着改变沸石膜,并且对于大规模生产沸石膜具有良好的潜力。将钛和钒金属离子掺入MFI沸石的结构框架中可赋予该材料催化性能。研究了二氧化硅和金属(即Ti和V)的含量,模板浓度和温度对沸石膜生长和形态的影响。对稀有气体(He和Ar),无机气体(H 2 ,N 2 ,SF 6 )和烃(甲烷,nC 4 ,iC 4 )确定这些膜的分离性能。使用基于微电子制造和沸石薄膜技术的新制造方法,成功地将高度复杂的微通道几何结构和网络(<5μm)以及沸石阵列(<10μm)制造到了高度取向的支撑沸石膜上。即使在303 K和873 K之间的长时间热循环中重复之后,沸石微图案也是稳定的。这项工作还证明,沸石(即Sil-1,ZSM-5和TS-1)可用作微型化学装置中的催化剂,膜或结构材料。传统的半导体制造技术用于微加工设备架构。讨论了制备沸石催化微反应器的四种策略:沸石粉末涂料,均匀的沸石膜生长,局部的沸石生长以及蚀刻沸石-硅复合膜生长抑制剂。还制备了Silicalite-1作为用于沸石膜微分离器的自支撑膜。

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