在 Mo-ZSM-5/ZSM-11 互生沸石材料上增强甲烷与甲醇的脱氢芳构化作用

IF 7.1 3区 材料科学 Q1 GREEN & SUSTAINABLE SCIENCE & TECHNOLOGY
Lei Wang, Xinxin Lei, Lulu Xu, Dazhi Zhang, Weiping Zhang
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引用次数: 0

摘要

甲烷脱氢芳构化(MDA)是直接利用丰富甲烷资源的一条极具吸引力的途径。目前,MDA 反应的主要挑战在于焦炭形成导致催化剂迅速失活,从而阻碍了该工艺的大规模工业化。在此,我们报告了一种在钼基沸石材料上进行甲醇存在下的 MDA 强化转化路线。与普通的 ZSM-5、ZSM-11 及其机械混合的同类材料相比,嵌入 ZSM-5/ZSM-11 互生基质中的钼在甲烷和甲醇(/ = 30)共给料的情况下表现出更高的甲烷转化率(16.0%)和芳烃选择性(62.5%),同时将焦炭产量限制在 12.1%。如果不添加甲醇,则 MDA 反应的焦炭选择性高达 45.1%。此外,甲烷和甲醇共芳构化的副产物是富氢合成气(/ = 6)。NH吸附的 H MAS NMR、钴滴定的 UV-vis 和拉曼光谱表征显示,适量的勃氏酸位点和锚定在相交空腔的铝对上的双核钼可能是互生沸石具有优异反应性能的原因。通过 CHOH 同位素标记示踪和 C 固态核磁共振研究,还提出了一种催化机理。甲醇首先分解为 CO/H,而 CO 则氢化为 CH,并通过水气变换反应转化为 CO。或者,甲醇通过甲酸中间体转化为 CO/CO。随后,CO 通过反向布达特反应减少焦炭沉积,从而提高催化性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Enhanced dehydroaromatization of methane with methanol on Mo-ZSM-5/ZSM-11 intergrown zeolite materials

Enhanced dehydroaromatization of methane with methanol on Mo-ZSM-5/ZSM-11 intergrown zeolite materials
Methane dehydroaromatization (MDA) represents an appealing route for the direct utilization of abundant methane resources. Currently, the major challenge of MDA reaction lies in the rapid catalyst deactivation via coke formation, hindering large-scale industrialization of the process. Herein we report an enhanced conversion route of MDA in the presence of methanol on Mo-based zeolite materials. Compared to regular ZSM-5, ZSM-11, and their mechanically mixed counterparts, Mo embedded in ZSM-5/ZSM-11 intergrown matrix exhibits higher methane conversion (16.0%) and aromatics selectivity (62.5%) while limiting coke production to 12.1% under the co-feeding of methane and methanol (/ = 30). If no methanol addition, coke selectivity is up to 45.1% in MDA reaction. Additionally, hydrogen enriched syngas (/ = 6) was obtained as a co-product of the methane and methanol co-aromatization. NH-adsorbed H MAS NMR, Co titrated UV-vis and Raman spectroscopy characterizations reveal that a proper amount of Brönsted acid sites and the binuclear Mo anchored on the Al pairs at the intersection cavity may account for the superior reaction performance of the intergrown zeolites. A catalytic mechanism was also proposed via CHOH isotopic labeling tracer and C solid-state NMR studies. Methanol is first decomposed into CO/H, while CO is hydrogenated to CH and converted into CO via the water-gas shift reaction. Alternatively, methanol is converted into CO/CO through formate intermediates. Subsequently, CO reduces coke deposition via the reverse Boudart reaction, which improves the catalytic performance.
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来源期刊
CiteScore
5.80
自引率
6.40%
发文量
174
审稿时长
32 days
期刊介绍: Materials Today Sustainability is a multi-disciplinary journal covering all aspects of sustainability through materials science. With a rapidly increasing population with growing demands, materials science has emerged as a critical discipline toward protecting of the environment and ensuring the long term survival of future generations.
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