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February 8, 2026Environmental Science & Technology2 citations

Tailoring Cu + –O v –Ti Ensembles with Electrophilic O – Species for Enhanced Catalytic Toluene Oxidation

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YFYarong FangSMShiqi MaZYZhixin Yu

Key Points

  • The research aims to improve toluene oxidation efficiency using designed Cu+-O-v-Ti catalysts.
  • Designed Cu+-O-v-Ti ensembles to couple isolated Cu with oxygen vacancies.
  • Tested catalytic performance of defective Cu/TiO2-x catalysts for toluene oxidation.
  • Analyzed the formation of superoxide species and subsequent reactive intermediates.
  • Defective Cu/TiO2-x achieved T90 of 225 °C, 100 °C lower than pristine Cu/TiO2.
  • Synergistic activation of O2 formed Cu-(O-O)ad-Ti bridged superoxide O2- intermediates.
  • Electrophilic O- species successfully attacked methyl C-H bonds of toluene.

Abstract

The acceleration of industrialization has driven the increased emission of volatile organic compounds (VOCs), posing significant threats to both the ecological environment and public health. The deficiency of reactive oxygen species fundamentally restricts the low-temperature catalytic toluene combustion in transition-metal oxide catalysts. Herein, we report a strategy for intelligently designing active Cu+-Ov-Ti ensembles by coupling isolated Cu with adjacent oxygen vacancy, which can synergistically activate chemisorbed O2 into reactive superoxide species (O2-). The defective Cu/TiO2-x catalyst exhibited remarkable catalytic performance for toluene oxidation, achieving a T90 of 225 °C, significantly 100 °C lower than that of the pristine Cu/TiO2 catalyst. The low coordination geometry and electron transfer within Cu+-Ov-Ti ensembles synergistically activated O2 to form the Cu-(O-O)ad-Ti bridged superoxide O2- intermediate with an elongated O═O bond. In addition, the distinctive Cu-(O-O)ad-Ti bridging structure with localized electrons facilitated the chemisorbed O2 dissociation into electrophilic monatomic O- species, which subsequently nucleophilically attack the methyl C-H of toluene. These benzyl alcohol-derived Ph-CH2-O- intermediates can be readily and flexibly converted into reactive benzaldehyde and benzoic acid species, which were available for subsequent aromatic ring-opening reactions. This study not only advances mechanistic insights into the Cu+-Ov-Ti ensembles and electrophilic O- species in toluene catalytic oxidation but also establishes a design Cu+-Ov-Ti principle for engineering efficient VOC elimination catalysts.

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Cite This Study

Fang et al. (2026) studied this question.

synapsesocial.com/papers/698828eb0fc35cd7a8848db5https://doi.org/10.1021/acs.est.5c14437
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