Structure Sensitivity of Methanol Electrooxidation on Transition Metals

We have investigated the structure sensitivity of methanol electrooxidation on eight transition metals (Au, Ag, Cu, Pt, Pd, Ir, Rh, and Ni) using periodic, self-consistent density functional theory (DFT-GGA). Using the adsorption energies of 16 intermediates on two different facets of these eight face-centered-cubic transition metals, combined with a simple electrochemical model, we address the differences in the reaction mechanism between the (111) and (100) facets of these metals. We investigate two separate mechanisms for methanol electrooxidation: one going through a CO intermediate (the indirect pathway) and another that oxidizes methanol directly to CO2 without CO as an intermediate (the direct pathway). A comparison of our results for the (111) and (100) surfaces explains the origin of methanol electrooxidation’s experimentally-established structure sensitivity on Pt surfaces. For most metals studied, on both the (111) and (100) facets, we predict that the indirect mechanism has a higher onset potential than the direct mechanism. Ni(111), Au(100), and Au(111) are the cases where the direct and indirect mechanisms have the same onset potential. For the direct mechanism, Rh, Ir, and Ni show a lower onset potential on the (111) facet, whereas Pt, Cu, Ag, and Au possess lower onset potential on the (100) facet. Pd(100) and Pd(111) have the same onset potential for the direct mechanism. These results can be rationalized by the stronger binding energy of adsorbates on the (100) facet versus the (111) facet. Using linear scaling relations, we establish reactivity descriptors for the (100) surface similar to those recently developed for the (111) surface; the free energies of adsorbed CO and OH can describe methanol electrooxidation trends on various metal surfaces reasonably well.

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PID https://www.doi.org/10.1021/ja904010u.s001
PID https://www.doi.org/10.1021/ja904010u
URL https://figshare.com/articles/journal_contribution/Structure_Sensitivity_of_Methanol_Electrooxidation_on_Transition_Metals/2821435
URL https://europepmc.org/article/MED/19754206
URL https://pubs.acs.org/doi/abs/10.1021/ja904010u
URL https://www.ncbi.nlm.nih.gov/pubmed/19754206
URL https://pubs.acs.org/doi/pdf/10.1021/ja904010u
URL https://pubs.acs.org/doi/10.1021/ja904010u
URL https://academic.microsoft.com/#/detail/1994698111
URL http://dx.doi.org/10.1021/ja904010u
URL https://core.ac.uk/display/153020505
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Access Right Open Access
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Author Peter Ferrin
Author Manos Mavrikakis
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Collected From figshare; Crossref; Microsoft Academic Graph
Hosted By Journal of the American Chemical Society; figshare
Publication Date 2009-10-14
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Language English
Resource Type Other literature type; Article
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Source https://science-innovation-policy.openaire.eu/search/publication?articleId=dedup_wf_001::e08f5da19e0b9979551548b7bba6b7e0
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Last Updated 25 December 2020, 14:37 (CET)
Created 25 December 2020, 14:37 (CET)