4.8 Article

Methanol to hydrocarbons reaction over Hβ zeolites studied by high resolution solid-state NMR spectroscopy: Carbenium ions formation and reaction mechanism

Journal

JOURNAL OF CATALYSIS
Volume 335, Issue -, Pages 47-57

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcat.2015.12.007

Keywords

Methanol-to-hydrocarbons; C-13 MAS NMR; Carbenium ions; Methylcyclopentenyl cations; Heptamethylbenzenium cation

Funding

  1. National Natural Science Foundation of China [21473182, 21273230, 21273005, 21210005, 21173255, 21176255, 21103180]
  2. Youth Innovation Promotion Association of the Chinese Academy of Sciences
  3. Ministry of Science and Technology of China through the National Basic Research Program of China [2012CB215002]

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Carbenium ions as active intermediates play very important roles in methanol conversion to hydrocarbons (MTH) reactions, while their observation and structure confirmation is of great difficulty. In this contribution, solid-state magic-angle-spinning (MAS) NMR spectroscopy has been applied in the investigation of methanol conversions over H beta zeolite. By attempting the batch-like and continuous-flow reactions over the catalysts with varied acid site densities and under the condition of different reaction temperatures and atmosphere pressures, an optimized way for direct observation of carbenium ions has been developed. For the first time, two types of carbenium ions, including methylcyclopentenyl (MCP+) cations and heptamethylbenzenium (heptaMB(+)) cation, have been successfully captured by C-13 MAS NMR during methanol conversion over H beta zeolite. For the batch-like reactions, methanol conversion and carbenium ions observation have been promoted by using the Hp catalysts with more Bronsted acid sites and performing the reaction under relatively high atmosphere pressure. The competitive adsorption from reactants and products on the catalyst surface may cause the deprotonation of the carbenium ions. In the continuous-flow reactions, both the heptaMB(+) and MCP+ cations are formed and more easily observed compared with batch-like reactions due to the improved methanol conversion and the reduced competitive adsorption on the Bronsted acid sites. Based on the carbenium ions identification, a catalytic cycle is proposed to explain the generation of isobutene, a predominantly generated product on Hp zeolite, during methanol conversion. (C) 2015 Elsevier Inc. All rights reserved.

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