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Fenton chemistry-based detemplation of an industrially relevant microcrystalline beta zeolite. Optimization and scaling-up studies

机译:工业相关的微晶β沸石的基于Fenton化学的缩模。优化和放大研究

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摘要

A mild template removal of microcrystalline beta zeolite, based on Fenton chemistry, was optimized. Fenton detemplation was studied in terms of applicability conditions window, reaction rate and scale up. TGA and CHN elemental analysis were used to evaluate the detemplation effectiveness, while ICP, XRD, LPHR-Ar physisorption, and 27Al MAS NMR were applied to characterize the structure and texture of the resulting materials. The material properties were compared to calcination. By understanding the interplay of relevant parameters of the Fenton chemistry, the process can be optimized in order to make it industrially attractive for scale-up. The H2O2 utilization can be minimized down to 15 mL H2O2/g (88 °C, 30 ppm Fe), implying a high solid concentration and low consumption of H2O2. When Fe concentration must be minimized, values as low as 5 ppm Fe can be applied (88 °C, 30 mL H2O2/g), to achieve full detemplation. The reaction time to completeness can be reduced to 5 h when combining a Fe-oxalate catalyst with UV radiation. The protocol was scaled up to 100 times larger its original recipe. In terms of the material's properties, the scaled material is structurally comparable to the calcined counterpart (comparable Si/Al and XRD patterns), while it displays benefits in terms of texture and Al-coordination, the latter with full preservation of the tetrahedral Al
机译:优化了基于Fenton化学的温和模板去除微晶β沸石的方法。从适用条件窗口,反应速率和放大规模方面研究了Fenton缩合。使用TGA和CHN元素分析评估去模板效果,同时使用ICP,XRD,LPHR-Ar物理吸附和27Al MAS NMR表征所得材料的结构和织构。将材料性质与煅烧进行比较。通过了解芬顿化学相关参数之间的相互作用,可以优化该过程,以使其在工业规模上具有吸引力。低至15 mL H2O2 / g(88°C,30 ppm Fe)可以最小化H2O2的利用率,这意味着高固体浓度和低H2O2消耗。当必须将Fe浓度降至最低时,可以采用低至5 ppm Fe的值(88°C,30 mL H2O2 / g),以实现完全脱模板。当将草酸铁催化剂与紫外线辐射结合使用时,反应完全的时间可减少至5小时。该协议的规模扩大到原始配方的100倍。就材料的性能而言,经缩放处理的材料在结构上可与煅烧的同类材料相比(可比较的Si / Al和XRD图案),而在结构和Al配位方面则显示出优势,后者可完全保留四面体Al

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