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Design of efficient bifunctional catalysts for direct conversion of syngas into lower olefins via methanol/dimethyl ether intermediates

机译:通过甲醇/二甲醚中间体将合成气直接转化为低级烯烃的高效双功能催化剂的设计

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摘要

The direct conversion of syngas into lower olefins is a highly attractive route for the synthesis of lower olefins. The selectivity of lower olefins via the conventional Fischer–Tropsch (FT) synthesis is restricted to ∼60% with high CH4 selectivity due to the limitation by the Anderson–Schulz–Flory (ASF) distribution. Here, we report the design of bifunctional catalysts for the direct conversion of syngas into lower olefins with selectivity significantly breaking the ASF distribution. The selectivity of C2–C4 olefins reached 87% at a CO conversion of 10% and was sustained at 77% by increasing CO conversion to 29% over a bifunctional catalyst composed of Zn-doped ZrO2 nanoparticles and zeolite SSZ-13 nanocrystals. The selectivity of CH4 was lower than 3% at the same time. It is demonstrated that the molar ratio of Zn/Zr, the density of Brønsted acid sites of SSZ-13 and the proximity of the two components play crucial roles in determining CO conversion and lower-olefin selectivity. Our kinetic studies indicate that methanol and dimethyl ether (DME) are key reaction intermediates, and the conversion of syngas to methanol/DME is the rate-determining step over the bifunctional catalyst. Formate and methoxide species have been observed on Zn-doped ZrO2 surfaces during the activation of CO in H2, and the formed methanol/DME are transformed into lower olefins in SSZ-13.
机译:合成气直接转化为低级烯烃是合成低级烯烃的极具吸引力的途径。由于安德森-舒尔茨-弗洛里(ASF)分布的限制,通过常规的费-托(FT)合成方法将低级烯烃的选择性限制在约60%,且具有高CH4选择性。在这里,我们报告了双功能催化剂的设计,该催化剂用于将合成气直接转化为低级烯烃,其选择性大大打破了ASF的分布。在由Zn掺杂的ZrO2纳米粒子和SSZ-13沸石纳米晶组成的双功能催化剂上,通过将CO转化率提高至29%,C2-C4烯烃的选择性在10%的CO转化率下达到87%,并保持在77%。同时CH4的选择性低于3%。结果表明,Zn / Zr的摩尔比,SSZ-13的布朗斯台德酸位点的密度以及两个组分的接近度在决定CO转化率和降低烯烃选择性方面起着至关重要的作用。我们的动力学研究表明,甲醇和二甲醚(DME)是关键的反应中间体,合成气向甲醇/ DME的转化是双功能催化剂上决定速率的步骤。在H2中CO活化过程中,在Zn掺杂的ZrO2表面观察到了甲酸盐和甲醇盐,形成的甲醇/ DME在SSZ-13中转化为低级烯烃。

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