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3D-printed zeolite monoliths with hierarchical porosity for selective methanol to light olefin reaction

机译:具有分层孔隙率的3D印刷沸石整料,用于选择性甲醇至轻质烯烃反应

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摘要

Herein, we report the rapid synthesis of customized zeolite monoliths with various compositions and hierarchical porosity (macro-meso-micro) using a 3D printing technique. Moreover, several 3D-printed monoliths were synthesized from HZSM-5 and HZSM-5/silica, and SAPO-34 crystals were grown on the assynthesized 3D-printed ZSM-5 monoliths via a secondary growth method. The 3D-printed zeolite monoliths exhibited hierarchical porosity with pore sizes ranging from 1.5 nm to 1 μm. Characterization results suggested that transformation of zeolite paste into the monolith structure enhanced the mesopore volume and moderated the acidity of the structures. Further incorporation of amorphous silica into the HZSM-5 monoliths reduced the acid site density. The obtained monoliths were evaluated in the methanol to olefin (MTO) reaction and found to exhibit higher stability than their powder counterparts. The selectivity to light olefins was significantly increased as a result of modification in the acidity and porosity of the monolith catalysts, which in turn mitigated the hydrogen transfer, hence suppressing the formation of paraffins and aromatics. The SAPO-34 coating tended to increase the ethylene selectivity due to its intrinsic framework structure. The analysis of spent zeolite monoliths by TGA-DTA indicated that the amount of polyaromatic species formed during the reaction was much lower than that on the powder analogues, due to their diluted acid site density and decreased Bronsted acid sites, as proven byNH3-TPD profiles and py-FTIR spectra. Furthermore, 29Si MAS NMR results confirmed slight dealumination of 3D-printed monoliths after the MTO reaction.
机译:在此,我们通过3D印刷技术报告了用各种组合物和分层孔隙率(宏观 - 中微)的定制沸石整料的快速合成。此外,通过HzSM-5和HZSM-5 /二氧化硅合成了几种3D印刷整料,通过二次生长方法在水合化3D印刷ZSM-5整料上生长SAPO-34晶体。 3D印刷沸石整料型具有孔径尺寸的分层孔隙率,范围为1.5nm至1μm。表征结果表明,沸石糊剂转化到整料结构中增强了中孔体积,并调节了结构的酸度。进一步掺入HZSM-5整料中的无定形二氧化硅降低了酸位点密度。将所得石铁在甲醇中对烯烃(MTO)反应进行评价,并发现表现出比其粉末对应物更高的稳定性。在整体催化剂的酸度和孔隙率的改性的结果中,对光烯烃的选择性显着增加,这反过来依赖于氢转移,因此抑制了链烷烃和芳烃的形成。 SAPO-34涂层由于其内在框架结构而倾向于增加乙烯选择性。通过TGA-DTA的废沸石整料分析表明,由于其稀释的酸位点密度和降低的正囊酸部位,反应期间形成的多芳族物质的量远低于粉末类似物。和py-ftir光谱。此外,29SI MAS NMR结果在MTO反应后确认了3D印刷整料的轻微洪水。

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