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June 4, 20260 citationsOpen Access

Outside Front Cover: Subsurface Stabilization of Interstitial Pt Atoms on CeO₂ (111): Rethinking Single‐Atom Catalyst Architectures

SCShuang ChenZYZairan YuJWJunjun Wang

Key Points

  • This research aims to investigate the stabilization of platinum atoms within cerium oxide and the implications for single-atom catalysts.
  • Utilized polarization-resolved IR spectroscopy on Pt-deposited CeO2(111) surfaces.
  • Conducted DFT calculations to explore interstitial site occupancy of platinum atoms.
  • Analyzed vibrational bands of CO to infer the presence of surface-bound vs. subsurface atoms.
  • No CO vibrational bands observed below 2140 cm−1 at low coverages, implying undetectable surface-bound Pt.
  • DFT calculations indicate that Pt atoms occupy favored buried interstitial sites at low coverages.
  • Findings challenge previous assumptions about single-atom positioning in catalytic systems.

Abstract

Single-atom catalysts (SACs) offer maximal efficiency by stabilizing isolated metal atoms on oxidic supports. Platinum on cerium oxide (CeO2) is a key SAC system, where adsorbed CO typically exhibits red-shifted vibrational modes due to Pt back-donation. Using polarization-resolved IR spectroscopy on Pt-deposited CeO2(111) single-crystal surfaces, we do not observe CO vibrational bands below 2140 cm−1 at low coverages, indicating that the surface-bound Pt atoms are not present in detectable amounts. DFT calculations demonstrate that this unexpected observation is consistent with Pt atoms occupying buried interstitial sites. Such subsurface single-atom sites, not considered in previous studies, are thermodynamically favored at low coverages, adopt an unusual oxidation state, and are inaccessible to direct CO binding. Our findings challenge the prevailing assumption that single atoms remain surface-bound and highlight the critical role of subsurface interstitial species, prompting a rethinking of how active sites in single-atom catalysts are stabilized on reducible oxides

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/6a2116fad499ed480b16fde1https://doi.org/10.5445/ir/1000193762
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Subsurface Stabilization of Interstitial Pt Atoms on CeO 2 (111): Rethinking Single‐Atom Catalyst Architectures2026
  2. 2Subsurface Stabilization of Interstitial Pt Atoms on CeO 2 (111): Rethinking Single‐Atom Catalyst Architectures2026
  3. 3Metallic states of Pt/CeO 2 catalysts dictate the activity for CO oxidation2026
  4. 4Stability of Pt1/CeO2 single-atom catalyst in oxygen-poor environments: first-principles insights2024
  5. 5Boosting the Low-Temperature CO Oxidation Activity of CeO2 via Photodirected Migration of Au Single Atoms2025 · 4 citations