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Coverage Effects in CO Dissociation on Metallic Cobalt Nanoparticles

Zijlstra, B.; Broos, R.J.P.; Chen, W.; Oosterbeek, H.; Filot, I.A.W.; Hensen, E.J.M.

Journal article 2019 Open access
54 Citations Scopus
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Yes Open access Hybrid OA

Abstract

The active site of CO dissociation on a cobalt nanoparticle, relevant to the Fischer-Tropsch reaction, can be computed directly using density functional theory. We investigate how the activation barrier for direct CO dissociation depends on CO coverage for step-edge and terrace cobalt sites. Whereas on terrace sites increasing coverage results in a substantial increase of the direct CO dissociation barrier, we find that this barrier is nearly independent of CO coverage for the step-edge sites on corrugated surfaces. A detailed electronic analysis shows that this difference is due to the flexibility of the adsorbed layer, minimizing Pauli repulsion during the carbon-oxygen bond dissociation reaction on the step-edge site. We constructed a simple first-principles microkinetic model that not only reproduces experimentally observed rates but also shows how migration of carbon species between step-edge and terrace sites contributes to methane formation.

Abstract from OpenAlex , checked 2026-07-01.

Citation

Zijlstra, B.; Broos, R.J.P.; Chen, W.; Oosterbeek, H.; Filot, I.A.W.; Hensen, E.J.M. Coverage Effects in CO Dissociation on Metallic Cobalt Nanoparticles. ACS Catal. 2019, 9 (8), 7365-7372. 10.1021/acscatal.9b01967

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Citation markers are read from Scopus when configured, with public DOI metadata as fallback, and cached locally. They can differ from Pure counts shown on institutional portals. Checked 2026-07-10 via Scopus.