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October 20, 2025Small2 citationsOpen Access

Pt Nanoparticle Disintegration at Oxide Interfaces Enhances CO Oxidation Catalysis

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EKEunji KangJYJieun YunHCHyuk Choi

Key Points

  • Dynamic disintegration of Pt nanoparticles significantly enhances CO oxidation efficiency, increasing activity threefold.
  • Density functional theory reveals that Pt-CO interactions weaken cohesion while strengthening surface intermediates at oxide interfaces.
  • In situ spectroscopic methods demonstrate how oxygen dynamics allow for structural reorganization of Pt nanoparticles.
  • The findings emphasize the importance of metal-support interactions in optimizing the catalytic performance of nanostructures.

Abstract

Abstract Understanding how supported metal nanoparticles dynamically evolve under reaction conditions is critical for controlling their catalytic function. Here, the mechanism behind the dynamic disintegration of Pt nanoparticles (NPs) supported on CeO x ‐ TiO 2 (CT) during CO oxidation is elucidated, leading to the formation of single atoms (SAs) and/or sub‐nanometer clusters. Density functional theory (DFT) calculations reveal that strong Pt‐CO interactions weaken Pt─Pt cohesion, while electronic coupling between Pt and Ce ions stabilizes Pt‐CO * intermediates at the oxide interface. Surface oxygen vacancies kinetically trap Pt‐CO * , but the vacancies are replenished under oxygen‐rich conditions, enabling Pt‐CO * surface diffusion and subsequent structural reorganization. In situ spectroscopic analyses confirm the oxygen‐driven transformation of Pt NPs, correlating with a threefold increase in mass‐specific activity at 150 °C. These findings demonstrate that interfacial oxygen dynamics and metal–support interactions can be leveraged to induce nanoparticle disintegration and optimize catalytic performance, highlighting the catalytic potential of interface‐engineered Pt nanostructures.

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Cite This Study

Kang et al. (2025) studied this question.

synapsesocial.com/papers/68f5fcdc8d54a28a75cf228chttps://doi.org/10.1002/smll.202506990
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