کد مقاله کد نشریه سال انتشار مقاله انگلیسی نسخه تمام متن
61272 47574 2013 12 صفحه PDF دانلود رایگان
عنوان انگلیسی مقاله ISI
Insights into the reaction mechanism of methanol-to-olefins conversion in HSAPO-34 from first principles: Are olefins themselves the dominating hydrocarbon pool species?
موضوعات مرتبط
مهندسی و علوم پایه مهندسی شیمی کاتالیزور
پیش نمایش صفحه اول مقاله
Insights into the reaction mechanism of methanol-to-olefins conversion in HSAPO-34 from first principles: Are olefins themselves the dominating hydrocarbon pool species?
چکیده انگلیسی

Full mechanistic understanding of methanol-to-olefins (MTO) conversion is urgently required, not least for the precise control of product selectivity and rational design of zeolite catalysts. Due to its complex nature, the MTO reaction mechanism is still a hot area of dispute. It was traditionally believed that the MTO reaction proceeds through hydrocarbon pool mechanism and methylbenzenes (MBs) are the predominant hydrocarbon pool species. However, by extensive periodic density functional theory (DFT) calculations in HSAPO-34 catalyst, this work indicates that olefins themselves other than MBs are likely to be the dominating hydrocarbon pool species. A full reaction network is established, and the routes to produce olefins, alkanes, and aromatics are formulated. We find that light olefins such as ethene and propene are mainly produced through the scission of cracking precursors (carbenium ions, alkoxides, and higher olefins), and which are formed by the methylation of lighter olefins. The distribution of these cracking precursors as the number of carbon atoms in the pore of catalysts influences the product selectivity from the reaction point of view. A decrease trend in the cracking energy barriers is observed with the carbon atom number of cracking precursors. Hydride transfer between two olefins results in the formation of alkanes and dienes and the latter are likely to be the precursors to form aromatics and subsequently leading to the deactivation of catalysts. This reaction network allows us to rationalize some experimental findings, and more importantly, provides clues on the understanding of selectivity and deactivation.

Full reaction mechanism of the methanol-to-olefins conversion was proposed in which olefins themselves other than methylbenzenes are the dominating hydrocarbon pool species. The distribution of cracking precursors like carbenium ions and alkoxides affects the product selectivity.Figure optionsDownload high-quality image (189 K)Download as PowerPoint slideHighlights
► Full reaction network of the methanol-to-olefins (MTO) conversion is proposed.
► Reaction mainly involves methylation, isomerization, cracking, hydride transfer, and cyclization.
► Methylbenzenes are not likely to be the hydrocarbon pool species.
► The dynamic distribution of cracking precursors affects the product selectivity.

ناشر
Database: Elsevier - ScienceDirect (ساینس دایرکت)
Journal: Journal of Catalysis - Volume 301, May 2013, Pages 8–19
نویسندگان
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