4.7 Article

Optical and Photocatalytic Properties of Br-Doped BiOCl Nanosheets with Rich Oxygen Vacancies and Dominating {001} Facets

Journal

NANOMATERIALS
Volume 12, Issue 14, Pages -

Publisher

MDPI
DOI: 10.3390/nano12142423

Keywords

BiOCl nanosheets; Br doping; surface facet; oxygen vacancies; photocatalytic performance

Funding

  1. National Natural Science Foundation of China [51302218, 51472205]
  2. Natural Science Basic Research Plan in Shaanxi Province of China [2021JQ-257, 2018JM5039]
  3. Fundamental Research Funds for the Central Universities [300102120305]
  4. Fundamental Research Funds for the Central Universities of China [3102016ZY033]

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This study developed a method for fabricating oxygen-deficient Br-doped BiOCl nanosheets with dominating {001} facets through hydrothermal reaction. It explored the impact of Br doping and specific facets on carrier separation and photocatalytic performance, showing significant improvements in visible light absorption and photocatalytic efficiency.
Crystal facet engineering and nonmetal doping are regarded as effective strategies for improving the separation of charge carriers and photocatalytic activity of semiconductor photocatalysts. In this paper, we developed a facial method for fabricating oxygen-deficient Br-doped BiOCl nanosheets with dominating {001} facets through a traditional hydrothermal reaction and explored the impact of the Br doping and specific facets on carrier separation and photocatalytic performance. The morphologies, structures, and optical and photocatalytic properties of the obtained products were characterized systematically. The BiOCl samples prepared by the hydrothermal reaction exhibited square-like shapes with dominating {001} facets. Photodeposition results indicated that photoinduced electrons preferred to transfer to {001} facets because of the strong internal static electric fields in BiOCl nanosheets with dominating {001} facets. Br doping not only contributed to the formation of impurity energy levels that could promote light absorption but introduced a large number of surface oxygen vacancies (V-O) in BiOCl photocatalysts, which was beneficial for photocatalytic performance. Moreover, the photocatalytic activities of these products under visible light were tested by degradation of rhodamine B (RhB). Because of the synergistic effect of the dominating {001} facets, Br doping, and rich V-O, oxygen-deficient Br-doped BiOCl nanosheets exhibited improved carrier separation, visible light absorption, and photocatalytic efficiency.

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