4.8 Article

Interplay between CO Disproportionation and Oxidation: On the Origin of the CO Reaction Onset on Atomic Layer Deposition-Grown Pt/ZrO2 Model Catalysts

Journal

ACS CATALYSIS
Volume 11, Issue 1, Pages 208-214

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acscatal.0c03974

Keywords

Pt nanoparticles; catalysis; in situ spectroscopy; operando; SFG; NAP-XPS; DFT

Funding

  1. Austrian Science Fund (FWF) [DK+ Solids4Fun W1243, SFB FOXSI F4502-N16, I4434-N]
  2. TU Wien
  3. Swedish Research Council [2016-05234]
  4. SNIC grant
  5. Austrian Science Fund (FWF) [I4434] Funding Source: Austrian Science Fund (FWF)

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Pt/ZrO2 model catalysts were prepared using ALD and studied through a combination of experimental techniques and theoretical calculations to understand CO adsorption and reaction processes. The researchers found that the onset of CO reaction depends on a delicate balance between CO disproportionation and oxidation, with initial CO oxidation being influenced by the removal of carbon deposits under current conditions.
Pt/ZrO2 model catalysts were prepared by atomic layer deposition (ALD) and examined at mbar pressure by operando sum frequency generation (SFG) spectroscopy and near-ambient pressure X-ray photoelectron spectroscopy (NAP-XPS) combined with differentially pumped mass spectrometry (MS). ALD enables creating model systems ranging from Pt nanoparticles to bulk-like thin films. Polarization-dependent SFG of CO adsorption reveals both the adsorption configuration and the Pt particle morphology. By combining experimental data with ab initio density functional theory (DFT) calculations, we show that the CO reaction onset is determined by a delicate balance between CO disproportionation (Boudouard reaction) and oxidation. CO disproportionation occurs on low-coordinated Pt sites, but only at high CO coverages and when the remaining C atom is stabilized by a favorable coordination. Thus, under the current conditions, initial CO oxidation is found to be strongly influenced by the removal of carbon deposits formed through disproportionation mechanisms rather than being determined by the CO and oxygen inherent activity. Accordingly, at variance with the general expectation, rough Pt nanoparticles are seemingly less active than smoother Pt films. The applied approach enables bridging both the materials and pressure gaps.

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