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Crystal phase-driven electronic metal-support interactions in Ru/Nb2O5 catalysts enable efficient low-temperature acetone oxidation

  • Jicheng Liu
  • , Yani Wu
  • , Zhenxing Wang
  • , Zeyu Jiang
  • , Fan Dang
  • , Siyu Gan
  • , Yingying Yong
  • , Chunli Ai
  • , Chi He
  • , Chunli Zheng
  • School of Energy and Power Engineering
  • South China Institute of Environmental Sciences
  • University of Chinese Academy of Sciences

Research output: Contribution to journalArticlepeer-review

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 languageEnglish
Article number124051
JournalJournal of Environmental Chemical Engineering
Volume14
Issue number5
DOIs
StatePublished - Oct 2026
Externally publishedYes

Keywords

  • Acetone oxidation
  • Crystal phase engineering
  • Electronic metal-support interactions
  • Oxygen vacancies
  • Surface reaction mechanism

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