Abstract
Efficient catalytic oxidation of oxygenated volatile organic compounds (OVOCs) at low temperatures remains challenging due to insufficient oxygen activation and the accumulation of partially oxidized intermediates. Modulating electronic metal-support interactions (EMSIs) offers a promising strategy to overcome these limitations by tailoring interfacial electronic structures and oxygen activation capability. Here we show that crystal phase engineering of Nb2O5 provides a powerful approach to optimize EMSIs in Ru-based catalysts for OVOCs oxidation. The Ru/T-Nb2O5 (orthorhombic) catalyst achieves 90% acetone conversion at just 209 °C, outperforming Ru/TT-Nb2O5 (pseudohexagonal) catalyst. Spectroscopic analyses combined with density functional theory calculations reveal that the T-phase Nb2O5 support induces stronger interfacial charge transfer from Ru to support, stabilizing electron-deficient Ruδ+ species and markedly lowering the oxygen vacancy formation energy. The resulting high density of surface oxygen vacancies enhances oxygen activation and strengthens acetone adsorption at the interfacial Ru−Nb2O5 sites. Surface mechanism investigations identify aldehydes and carboxylic acids as key intermediates and show that the Ru/T-Nb2O5 catalyst accelerates their deep oxidation while suppressing intermediate accumulation at low temperature. These findings establish a direct correlation between support crystal phase and interfacial electronic structure, providing a general strategy for designing highly efficient catalysts in OVOCs purification.
| Original language | English |
|---|---|
| Article number | 124051 |
| Journal | Journal of Environmental Chemical Engineering |
| Volume | 14 |
| Issue number | 5 |
| DOIs | |
| State | Published - Oct 2026 |
| Externally published | Yes |
Keywords
- Acetone oxidation
- Crystal phase engineering
- Electronic metal-support interactions
- Oxygen vacancies
- Surface reaction mechanism
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