Abstract
Sintering poses a significant challenge to achieving the long-term stability of supported metal catalysts under reaction conditions. Here, we report a low-temperature catalyst redispersion mechanism, in which platinum single atoms, which aggregate into nanoparticles under Reverse Water Gas Shift (RWGS) conditions at elevated temperatures, fragment into atomically dispersed species upon cooling. Using multimodal operando characterization combined with first-principles theoretical modeling, we track the structural evolution of Pt single atoms supported on ceria nanodomes, deposited either on ceria or ceria–titania mixed oxides. We find that fragmentation is more pronounced when cooling occurs under RWGS conditions compared to CO alone, owing to a synergistic interplay of the effects of H2, CO2, and CO. The support architecture has a strong influence on the extent of redispersion: while CO alone induces fragmentation on ceria, interfacial confinement and vacancy pinning at the ceria–titania interface suppress restructuring. In contrast, RWGS conditions overcome these barriers, enabling redispersion across both supports. These findings point toward a pathway for catalyst stabilization via reaction-induced redispersion under mild conditions.
| Original language | English |
|---|---|
| Pages (from-to) | 19709-19720 |
| Number of pages | 12 |
| Journal | ACS Catalysis |
| Volume | 15 |
| DOIs | |
| State | Published - 2025 |
Keywords
- In-situ
- catalyst-restructuring
- reaction-driven redispersion
- reverse water gas shift reaction
- single-atom catalysts
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