4.8 Article

Insight into the effects of confined hydrocarbon species on the lifetime of methanol conversion catalysts

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NATURE MATERIALS
卷 19, 期 10, 页码 1081-+

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NATURE PUBLISHING GROUP
DOI: 10.1038/s41563-020-0800-y

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资金

  1. Engineering and Physical Sciences Research Council [EP/K007467/1, EP/K014706/2, EP/K014668/1, EP/K014854/1, EP/K014714/1, EP/M013219/1, EP/S016481/1]
  2. Ghent University
  3. Horizon 2020 research and innovation program of the European Union (consolidator European Research Council grant) [647755]
  4. FWO
  5. EPSRC [EP/K014714/1, EP/S016481/1] Funding Source: UKRI

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The methanol-to-hydrocarbons reaction on zeolites produces olefins from many sources, but catalyst stability is a major challenge. Here, by combining operando measurements and simulations, the formation and identification of deactivating carbonaceous species throughout the reaction are achieved. The methanol-to-hydrocarbons reaction refers collectively to a series of important industrial catalytic processes to produce either olefins or gasoline. Mechanistically, methanol conversion proceeds through a 'pool' of hydrocarbon species. For the methanol-to-olefins process, these species can be delineated broadly into 'desired' lighter olefins and 'undesired' heavier fractions that cause deactivation in a matter of hours. The crux in further catalyst optimization is the ability to follow the formation of carbonaceous species during operation. Here, we report the combined results of an operando Kerr-gated Raman spectroscopic study with state-of-the-art operando molecular simulations, which allowed us to follow the formation of hydrocarbon species at various stages of methanol conversion. Polyenes are identified as crucial intermediates towards formation of polycyclic aromatic hydrocarbons, with their fate determined largely by the zeolite topology. Notably, we provide the missing link between active and deactivating species, which allows us to propose potential design rules for future-generation catalysts.

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