Applied Catalysis2022,Vol.30310.DOI:10.1016/j.apcatb.2021.120903

V2O5 nanodot-decorated laminar C3N4 for sustainable photodegradation of amoxicillin under solar light

Le, Shukun Zhu, Chengzhang Cao, Yuwen Wang, Peng Liu, Quansheng Zhou, Huacong Chen, Chuanxiang Wang, Shaobin Duan, Xiaoguang
Applied Catalysis2022,Vol.30310.DOI:10.1016/j.apcatb.2021.120903

V2O5 nanodot-decorated laminar C3N4 for sustainable photodegradation of amoxicillin under solar light

Le, Shukun 1Zhu, Chengzhang 2Cao, Yuwen 3Wang, Peng 1Liu, Quansheng 1Zhou, Huacong 1Chen, Chuanxiang 2Wang, Shaobin 4Duan, Xiaoguang4
扫码查看

作者信息

  • 1. Inner Mongolia Univ Technol
  • 2. Jiangsu Univ Sci & Technol
  • 3. Jiangsu Univ
  • 4. Univ Adelaide
  • 折叠

Abstract

Innovative solar-driven heterostructure photocatalysts are promising for removing deleterious antibiotics residues in the water environment. Herein, we prepared a vanadium pentoxide/graphitic carbon nitride (V2O5/ C3N4) S-scheme with a facile approach. The heterostructure provides larger surface areas, promotes the separation and transfer of charge carriers, and offers abundant active sites for photocatalytic redox reactions. The composites were used to degrade amoxicillin (AMX) under solar light which attained a high removal efficiency (91.3%) and stability. Meanwhile, the photodegradation pathway of AMX was revealed by HPLC-MS/MS analysis and density functional theory (DFT) computations. Superoxide radicals evolved from conduction band of C3N4 and oxidative holes were generated from valence band of V2O5, which were confirmed by electron spin resonance experiments and selective radical quenching experiments. The V2O5/C3N4 S-scheme structure provides an internal electron channel at the interface and maintains the active sites with high potentials for photodegradation. Our work affords a robust V2O5/C3N4 S-scheme nanocomposites for sustainable water purification.

Key words

V2O5/LaminarC(3)N(4)/Amoxicillin/Degradation pathway/S-scheme heterojunction/CARBON NITRIDE/G-C3N4/PHOTOCATALYST/DEGRADATION/PERFORMANCE

引用本文复制引用

出版年

2022
Applied Catalysis

Applied Catalysis

ISSN:0926-3373
被引量55
参考文献量60
段落导航相关论文