<p>This review emphasizes single-metal-atom oxides as effective photocatalysts for the degradation of organic pollutants and photocatalytic hydrogen production, particularly in enhancing systems based on single-metal-atom oxides for the degradation of organic dyes and hydrogen evolution. Single metal oxides, alone or in combination with semiconductors, increase efficiency. Single-metal-atom oxides facilitate charge separation in situations involving tight bandgaps, whereas, in broader bandgaps, they promote visible/NIR activity via up-conversion luminescence. Incorporated into Z-scheme heterostructures, single-metal-atom oxides diminish recombination by promoting electron transport. In this review, oxide-supported single-atom catalysts are discussed about their synthetic procedures, characterizations, and reaction mechanism in photocatalysis, such as photocatalytic hydrogen generation, degradation, and electron transfer. The single-metal-atom oxides are anchored on the oxide materials such as TiO<sub>2</sub>, Fe<sub>3</sub>O<sub>4</sub>, Bi<sub>2</sub>MoO<sub>6</sub>, rGO, and CoO. Moreover, altering single-metal-atom oxides via doping and incorporating functional groups on their surfaces modifies their properties, indicating the potential for more efficient photocatalysts modified with single-metal-atom oxides in forthcoming studies.</p>

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Single metal atom oxides as photocatalysts: synthesis, characterization, and their role in degradation and hydrogen evolution – a mini-review

  • Annamalai Raja,
  • Young-Ae Lee,
  • Misook Kang,
  • Karuppaiah Selvakumar,
  • Meenakshisundaram Swaminathan

摘要

This review emphasizes single-metal-atom oxides as effective photocatalysts for the degradation of organic pollutants and photocatalytic hydrogen production, particularly in enhancing systems based on single-metal-atom oxides for the degradation of organic dyes and hydrogen evolution. Single metal oxides, alone or in combination with semiconductors, increase efficiency. Single-metal-atom oxides facilitate charge separation in situations involving tight bandgaps, whereas, in broader bandgaps, they promote visible/NIR activity via up-conversion luminescence. Incorporated into Z-scheme heterostructures, single-metal-atom oxides diminish recombination by promoting electron transport. In this review, oxide-supported single-atom catalysts are discussed about their synthetic procedures, characterizations, and reaction mechanism in photocatalysis, such as photocatalytic hydrogen generation, degradation, and electron transfer. The single-metal-atom oxides are anchored on the oxide materials such as TiO2, Fe3O4, Bi2MoO6, rGO, and CoO. Moreover, altering single-metal-atom oxides via doping and incorporating functional groups on their surfaces modifies their properties, indicating the potential for more efficient photocatalysts modified with single-metal-atom oxides in forthcoming studies.