Applied Catalysis2022,Vol.30315.DOI:10.1016/j.apcatb.2021.120889

Visible-light-driven removal of atrazine by durable hollow core-shell TiO2@LaFeO3 heterojunction coupling with peroxymonosulfate via enhanced electron-transfer

Wei, Kexin Armutlulu, Andac Wang, Yinxu Yao, Gang Xie, Ruzhen Lai, Bo
Applied Catalysis2022,Vol.30315.DOI:10.1016/j.apcatb.2021.120889

Visible-light-driven removal of atrazine by durable hollow core-shell TiO2@LaFeO3 heterojunction coupling with peroxymonosulfate via enhanced electron-transfer

Wei, Kexin 1Armutlulu, Andac 2Wang, Yinxu 1Yao, Gang 1Xie, Ruzhen 1Lai, Bo1
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作者信息

  • 1. Sichuan Univ
  • 2. Swiss Fed Inst Technol
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Abstract

Insufficient charge-carriers separation and deteriorated recycling are still bottlenecks limiting practical photo-catalytic water purification. Herein, we developed a durable hollow core-shell TiO2@LaFeO3(TLFO) nanosphere via facile carbon-sphere-templated method and sol-gel process, and applied it as heterojunction photocatalyst coupled with peroxymonosulfate (PMS) for efficient atrazine (ATZ) removal via enhanced electron-transfer. The built-in electric field originated from the three-dimensional heterojunction between TiO2 and LaFeO3, acting as charge transfer driving force, enhanced the charge separation rate. Meanwhile, PMS could function as electron acceptor to boost photogenerated charge separation and maximize reactive oxidant species (e.g., (OH)-O-center dot, SO4 center dot-, O-2(center dot-) and O-1(2)) production. Therefore, the fabricated TLFO heterojunction exhibited outstanding reusability, and superior ATZ removal efficiency without detectable metal ion leaching. This work successfully demonstrates the synergistic effect and superior hollow structure of TLFO heterojunction with promoted light utilization and PMS activation, which offers potential application for efficient abating environmental pollution using solar energy.

Key words

Perovskite/Photocatalyst/Reactive oxidation species/PMS/AOPs/PERSULFATE ACTIVATION/SINGLET OXYGEN/DEGRADATION/PEROVSKITE/OXIDATION/KINETICS/NANO/PHOTODEGRADATION/PHOTOCATALYST/INSIGHTS

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出版年

2022
Applied Catalysis

Applied Catalysis

ISSN:0926-3373
被引量63
参考文献量84
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