About

Log in?

DTU users get better search results including licensed content and discounts on order fees.

Anyone can log in and get personalized features such as favorites, tags and feeds.

Log in as DTU user Log in as non-DTU user No thanks

DTU Findit

Journal article

Electro-Oxidation of Methane on Platinum under Ambient Conditions

From

Stanford University1

Department of Physics, Technical University of Denmark2

Herein, we investigate the electrochemical conversion of methane to CO2 on platinum electrodes under ambient conditions. Through a combination of experimentation, density functional theory (DFT) calculations, and ab initio kinetic modeling, we have developed an improved understanding of the reaction mechanism and the factors that determine catalyst activity.

We hypothesized that the rate-determining methane activation step is thermochemical (i.e., CH4(g) → CH3∗ + H∗) as opposed to electrochemical based on a fitted barrier of approximately 0.96 eV that possesses minimal potential dependence. We developed a simple kinetic model based on the assumption of thermochemical methane activation as the rate-determining step, and the results match well with experimental data.

Namely, the magnitude of the maximum current density and the electrode potential at which it is realized agree with our ab initio kinetic model. Finally, we expanded our kinetic model to include other transition metals via a descriptor-based analysis and found platinum to be the most active catalyst for the oxidation of methane, which is in line with previously published experimental observations.

Language: English
Publisher: American Chemical Society
Year: 2019
Pages: 7578-7587
ISSN: 21555435
Types: Journal article
DOI: 10.1021/acscatal.9b01207
ORCIDs: 0000-0003-3048-6593 , 0000-0002-6151-0755 , 0000-0002-3639-2427 , 0000-0002-2772-6341 , 0000-0002-0585-2670 , 0000-0001-9900-0622 and Nørskov, Jens K.

DTU users get better search results including licensed content and discounts on order fees.

Log in as DTU user

Access

Related

Analysis