| Literature DB >> 27037603 |
Yue Liu1, Sebastian Müller1, Daniel Berger1, Jelena Jelic1, Karsten Reuter1, Markus Tonigold2, Maricruz Sanchez-Sanchez3, Johannes A Lercher4.
Abstract
The elementary reactions leading to the formation of the first carbon-carbon bond during early stages of the zeolite-catalyzed methanol conversion into hydrocarbons were identified by combining kinetics, spectroscopy, and DFT calculations. The first intermediates containing a C-C bond are acetic acid and methyl acetate, which are formed through carbonylation of methanol or dimethyl ether even in presence of water. A series of acid-catalyzed reactions including acetylation, decarboxylation, aldol condensation, and cracking convert those intermediates into a mixture of surface bounded hydrocarbons, the hydrocarbon pool, as well as into the first olefin leaving the catalyst. This carbonylation based mechanism has an energy barrier of 80 kJ mol(-1) for the formation of the first C-C bond, in line with a broad range of experiments, and significantly lower than the barriers associated with earlier proposed mechanisms.Entities:
Keywords: C−C coupling; carbonylation; methanol-to-hydrocarbons; olefin; zeolites
Year: 2016 PMID: 27037603 DOI: 10.1002/anie.201511678
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336