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New in-sights into the engineering of reactive oxygen species with boosting photothermal catalytic selectivity for dihydroxyacetone by synergistic Cu/Ce bimetallic active center over BiVO 4

Molecular Catalysis, ISSN: 2468-8231, Vol: 555, Page: 113871
2024
  • 4
    Citations
  • 0
    Usage
  • 2
    Captures
  • 1
    Mentions
  • 0
    Social Media
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  • Citations
    4
  • Captures
    2
  • Mentions
    1
    • News Mentions
      1
      • News
        1

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New Chemicals and Chemistry Findings Reported from Beijing Technology and Business University (New In-sights Into the Engineering of Reactive Oxygen Species With Boosting Photothermal Catalytic Selectivity for Dihydroxyacetone By Synergistic ...)

2024 APR 03 (NewsRx) -- By a News Reporter-Staff News Editor at Engineering Daily News -- Investigators publish new report on Chemicals and Chemistry. According

Article Description

The low selectivity and conversion rate of dihydroxyacetone (DHA) by glycerol oxidation over catalysts due to their poor reactive oxygen species (ROS) regulation, which still seriously limits the practical application. Engineering of ROS, especially singlet oxygen ( 1 O 2 ), by constructing oxygen vacancies (OVs) can tune surface/bulk electronic structure and improve surface active sites of catalytic oxidation with desired selectivity and reactivity. Herein, we report the preparation of DHA by photothermal catalysis (PTC) of glycerol over Cu/Ce-BiVO 4 ternary system with unique Ce nanoisland structure on the surface of BiVO 4 substrate for effectively anchoring Cu. The forming Ce-O-Cu asymmetric oxygen vacancies can both promote the electron transfer to form superoxide anion (·O 2 − ) and also improve the efficiency of energy transfer to generate 1 O 2. Furthermore, the synergistic Ce and Cu bimetal active sites can regulate the microelectron structure of Ce 3+ /Ce 4+ and Cu 0 /Cu + redox centers, leading an outstanding yield of 41.1% and a boosting selectivity reached to 59.7%.·O 2 − can enhance the conversion of glycerol oxidation, while 1 O 2 can boost the selectivity to directionally form DHA. The synergistic effect of 1 O 2 and ·O 2 − is the key to improve catalytic efficiency. First-principles calculations indicate that the most reasonable reaction pathway for 1 O 2 production is O 2 →Cu/Ce-BVO→ 1 O 2. This study explores the relationship between asymmetric oxygen vacancy and singlet oxygen production, and provides a basis for designing new high-performance catalysts.

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