Revealing Active Sites and Reaction Pathways in Methane Non‐Oxidative Coupling over Iron‐Containing Zeolites

Author:

Zhang Hao1,Bolshakov Aleksei1,Meena Raghavendra23ORCID,Garcia Gustavo A.4,Dugulan A. Iulian5,Parastaev Alexander1,Li Guanna23ORCID,Hensen Emiel J. M.1,Kosinov Nikolay1ORCID

Affiliation:

1. Laboratory of Inorganic Materials and Catalysis, Department of Chemical Engineering and Chemistry Eindhoven University of Technology 5600 MB Eindhoven The Netherlands

2. Biobased Chemistry and Technology Wageningen University & Research Bornse Weilanden 9 6708 WG Wageningen The Netherlands

3. Laboratory of Organic Chemistry Wageningen University & Research Stippeneng 4 6708 WE Wageningen The Netherlands

4. Synchrotron SOLEIL L'Orme des Merisiers St. Aubin BP 48 91192 Gif sur Yvette France

5. Fundamental Aspects of Materials and Energy, Department of Radiation Science and Technology Delft University of Technology Mekelweg 15 2629 JB Delft The Netherlands

Abstract

AbstractNon‐oxidative coupling of methane is a promising route to obtain ethylene directly from natural gas. We synthesized siliceous [Fe]zeolites with MFI and CHA topologies and found that they display high selectivity (>90 % for MFI and >99 % for CHA) to ethylene and ethane among gas‐phase products. Deactivated [Fe]zeolites can be regenerated by burning coke in air. In situ X‐ray absorption spectroscopy demonstrates that the isolated Fe3+ centers in zeolite framework of fresh catalysts are reduced during the reaction to the active sites, including Fe2+ species and Fe (oxy)carbides dispersed in zeolite pores. Photoelectron photoion coincidence spectroscopy results show that methyl radicals are the reaction intermediates formed upon methane activation. Ethane is formed by methyl radical coupling, followed by its dehydrogenation to ethylene. Based on the observation of intermediates including allene, vinylacetylene, 1,3‐butadiene, 2‐butyne, and cyclopentadiene over [Fe]MFI, a reaction network is proposed leading to polyaromatic species. Such reaction intermediates are not observed over the small‐pore [Fe]CHA, where ethylene and ethane are the only gas‐phase products.

Publisher

Wiley

Subject

General Medicine

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