Issue 27, 2021

Silica-supported Nb(iii)–CH3 species can act as an efficient catalyst for the non-oxidative coupling of methane

Abstract

To upgrade methane to more valuable products, the non-oxidative coupling of methane (NOCM) is a hopeful method. This work investigates the mechanism and evaluates the feasibility of silica-supported single-site niobium (Nb) catalysts for NOCM by density functional theory (DFT) calculations. Two catalyst candidates were studied, namely, the silica-supported Nb(III)–methyl catalyst (denoted as ([triple bond, length as m-dash]SiO)2Nb–CH3) and the silica-supported Nb(III)–hydride catalyst (denoted as ([triple bond, length as m-dash]SiO)2Nb–H). The catalytic cycle working with ([triple bond, length as m-dash]SiO)2Nb–CH3 contains 5 elementary steps, and the one working with ([triple bond, length as m-dash]SiO)2Nb–H contains 6 elementary steps. ([triple bond, length as m-dash]SiO)2Nb–CH3 is much more effective in catalyzing NOCM than ([triple bond, length as m-dash]SiO)2Nb–H on the basis of the energetic span value. Interestingly, the silica-supported Nb(III)–CH3 catalyst can have an increase of 2 orders of magnitude in the turnover frequency (TOF) for NOCM compared to the silica-supported Ta(III)–CH3 catalyst, the latter having been experimentally used for NOCM catalysis. This work provides further insights into the mechanism of single-site metal catalysts for NOCM, and provides a direct guide for catalyst design for NOCM as well.

Graphical abstract: Silica-supported Nb(iii)–CH3 species can act as an efficient catalyst for the non-oxidative coupling of methane

Supplementary files

Article information

Article type
Paper
Submitted
02 Mar 2021
Accepted
09 Jun 2021
First published
10 Jun 2021

New J. Chem., 2021,45, 12260-12270

Silica-supported Nb(III)–CH3 species can act as an efficient catalyst for the non-oxidative coupling of methane

X. Lin, L. Ma, S. Zhao, Y. Xi, H. Shang, G. An and C. Lu, New J. Chem., 2021, 45, 12260 DOI: 10.1039/D1NJ01039E

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