4.8 Article

Suppressing C-C Bond Dissociation for Efficient Ethane Dehydrogenation over the Isolated Co(II) Sites in SAPO-34

Journal

ACS CATALYSIS
Volume 11, Issue 21, Pages 13001-13019

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acscatal.1c03382

Keywords

ethane dehydrogenation; ethylene; Co/SAPO-34; ion-exchange method; isolated Co ion sites; suppression in C-C bond

Funding

  1. National Natural Science Foundation of China [21606108, 21576119, 21878127]
  2. Neimenggu Key Science & Technology Plan [2019GG321]
  3. Central Laboratory of School of Chemical and Material Engineering of Jiangnan University

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The study found that ionic-state -Co-O- species are favorable for suppressing C-C bond scission in ethane dehydrogenation, while reduced Co clusters promote both C-H and C-C bond scissions. Co-based SAPO-34 catalysts prepared by different methods show variations in selectivity and stability in the reaction.
Various Co-based SAPO-34 catalysts were prepared using different methods, including ion exchange (IE), incipient-wetness impregnation (IWI), and solid-phase grinding (SPG), to correlate the chemical states of Co species with the C-H and C-C bond scissions in ethane dehydrogenation. The IE-prepared Co/SAPO-34 led to stable, unreducible, and isolated exchanged Co sites anchored on the zeolite framework with a structure of -Al-F-O-Co-O- and showed the highest selectivity to ethylene of close to 98% at 600 degrees C, which suggests that these Co sites favors suppressing the C-C bond scission in ethane. In comparison, the IWI- and SPG-prepared Co/SAPO-34 catalysts, especially for those with a high Co loading, inevitably give Co oxide clusters that are easily reduced into metallic Co. Together with catalytic results, characterizations, and DFT calculations, it is confirmed that the reduced Co dusters, especially for those outside SAPO-34 channels without the confinement effect, favor both C-H and C-C bond scission, boosting the conversion of ethane into CH4 or/and coke; however, the ionic-state -Co-O- species can smoothly terminate the ethane dehydrogenation for the ethylene product due to relatively high energy barriers for both C-H and C-C bond scission, avoiding a deep dehydrogenation and C-C cracking. As expected, the unreducible -Co-O- sites are very stable in the title reaction without deanchoring from the zeolite framework in a 100 h cyclic test. This study not only demonstrates the stable -M delta+-O delta- structure favorable for suppressing C-C bond scission but also highlights a catalyst-constructing strategy for Co-based and similar metal-based catalysts for dehydrogenation of other light alkanes.

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