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Novel incomplete phase transition from α-Bi2O3 to γ-Bi2O3 constructing dual interfaces contacts with BaTiO3 for highly efficient degradation of antibiotics

  • Man Yu
  • , Bangfu Ding*
  • , Jiawei Wu
  • , Shun Zheng
  • , Xin Qian
  • , Lei Zhang
  • , Shukai Zheng
  • , Liang Mao
  • , Junying Zhang
  • *Corresponding author for this work
  • Hebei University
  • China University of Mining and Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Incomplete lattice transition in heterojunction preparation can generate another crystal phase to provide a new transfer channel of electrons and holes for enhancing photocatalytic activity. In this paper, the hydrothermal synthesis of BaTiO3 and α-Bi2O3 composite induced a part of α-Bi2O3 to γ-Bi2O3 lattice transition. Except for α-Bi2O3/BaTiO3 interface, a new BaTiO3/γ-Bi2O3 contact was formed to realize another transfer channel of the charge carriers. The removal efficiencies of norfloxacin and lomefloxacin using the optimal α-Bi2O3/BaTiO3/γ-Bi2O3 sample reached 93% and 95%, much higher than those of the pure phases and the diphasic heterojunction samples. After five times of cycle tests, the photodegradation efficiencies of these two antibiotics were above 90% and 91%, respectively, while the crystal structure of the sample unchanged to exhibit good structure stability. The superoxide radical (O2[rad]−), hole, and hydroxyl radicals (OH−[rad]) were the main active substances upon the antibiotics degradation. The photocatalytic enhancement mechanism was originated from the formation of a new Z-type energy band according to the surface and interface calculation. Finally, the analysis of mass spectrometry revealed the degradation processes of these two pollutants. These results provided a simple way to obtain efficient double interfaces heterojunction photocatalysts for removing antibiotic pollutants.

Original languageEnglish
Article number142586
JournalChemical Engineering Journal
Volume464
DOIs
StatePublished - 15 May 2023

Keywords

  • Antibiotics
  • BaTiO
  • Double interfaces contacts
  • Photodegradation
  • α-BiO to γ-BiO transition

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