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Effects of Particle Size on the Structure and Photocatalytic Performance by Alkali-Treated TiO2

Nanomaterials · 2020 · Vol. 10(3) · pp. 546–546
Danqi LiHongchen SongMeng XiaTingting ShenJing SunWenjia HanZuankai Wang

Abstract

Particle size of nanomaterials has significant impact on their photocatalyst properties. In this paper, TiO<sub>2</sub> nanoparticles with different crystalline sizes were prepared by adjusting the alkali-hydrothermal time (0-48 h). An annealing in N<sub>2</sub> atmosphere after hydrothermal treatment caused TiO<sub>2</sub> reduction and created defects, resulting in the visible light photocatalytic activity. The evolution of physicochemical properties along with the increase of hydrothermal time at a low alkali concentration has been revealed. Compared with other TiO<sub>2</sub> samples, TiO<sub>2</sub>-24 showed higher photocatalytic activity toward degrading Rhodamine B and Sulfadiazine under visible light. The radical trapping and ESR experiments revealed that O<sub>2</sub><sup>•-</sup> is the main reactive specie in TiO<sub>2</sub>-24. Large specific surface areas and rapid transfer of photogenerated electrons are responsible for enhancing photocatalytic activity. The above findings clearly demonstrate that particle size and surface oxygen defects can be regulated by alkali-hydrothermal method. This research will deepen the understanding of particle size on the nanomaterials performance and provide new ideas for designing efficient photocatalysts.

Advanced Photocatalysis TechniquesTiO2 Photocatalysis and Solar CellsCatalytic Processes in Materials SciencePhotocatalysisAlkali metalParticle (ecology)Materials scienceParticle sizeChemical engineeringNanotechnologyChemistryCatalysisGeology

Funding

  • National Natural Science Foundation of China
  • Shandong Academy of Sciences
  • Qilu University of Technology
Citations
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9.04
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