4.7 Article

Visible-light-driven 3D Bi5O7I/BiOCl microsphere with enhanced photocatalytic capability: Performance, degradation pathway, antibacterium and mechanism

期刊

CHEMOSPHERE
卷 299, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.chemosphere.2022.134482

关键词

Photocatalysis; Doxycycline hydrochloride; Antibacterium; Heterojunction; Bismuth-based materials

资金

  1. National Natural Science Foundation of China [51578354]
  2. Postgraduate Research & Practice Innovation Program of Jiangsu Province [SJCX20_1105]
  3. Zhangjiagang Science and Technology Bureau [ZKCXY2113]

向作者/读者索取更多资源

A 3D microsphere of Bi5O7I/BiOCl heterojunction catalyst was synthetised in this study, significantly enhancing the transfer rate and separation efficiency of carriers through synergy, and heightening light absorption capacity.
It is well known that both of the separation efficiency of photogenerated carriers and the response capability to visible light remarkably affect the photocatalytic performance. In the present work, a 3D microsphere of Bi5O7I/BiOCl heterojunction catalyst was synthetised. The synergy of Bi5O7I and BiOCl not only significantly enhances the transfer rate and separation efficiency of carriers, but also heightens light absorption capacity. As-prepared Bi5O7I/BiOCl (40 wt% BiOCl) has a higher degradation efficiency on doxycycline hydrochloride (DC) (90 min, 83.0%) and super high inhibition rate (90 min, 99.92%) on Escherichia coli under visible light, compared to the two monomers. Pollutants DC is finally decomposed into CO2, H2O and small molecule intermediates by generated h+, center dot OH and center dot O-2(-) . The effects of reactive radicals follow the order of center dot OH radicals > h(+) radicals >> center dot O-2(+) and e(-) radicals. The possible structures of intermediates and four possible degradation pathways involved were also discussed. In addition, As-synthetised Bi5O7I/BiOCl has preferable reusability and excellent chemical stability. Biological toxicity experiments also verify that Bi5O7I/BiOCl is a green and environmentally friendly composite material. This strategy provides a green, low-toxic way for the application of traditional type II heterojunction in the fields of environmental remediation and photocatalysis.

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