Applied Catalysis2022,Vol.31013.DOI:10.1016/j.apcatb.2022.121344

Ti~(3+) self-doped HO2 nanotubes photoelectrode decorated with Ar-Fe2O3 derived from MIL-100(Fe): Enhanced photo-electrocatalytic performance for antibiotic degradation

Meiying Jia Qi Liu Weiping Xiong
Applied Catalysis2022,Vol.31013.DOI:10.1016/j.apcatb.2022.121344

Ti~(3+) self-doped HO2 nanotubes photoelectrode decorated with Ar-Fe2O3 derived from MIL-100(Fe): Enhanced photo-electrocatalytic performance for antibiotic degradation

Meiying Jia 1Qi Liu 1Weiping Xiong1
扫码查看

作者信息

  • 1. College of Environmental Science and Engineering, Hunan University, Changsha 410082, PR China
  • 折叠

Abstract

The low interfacial mass transfer efficiency between metal-organic framework (MOFs) and conductive substrates makes the development of MOFs-based photoelectrodes challenging. Herein, Ar-Fe2O3/Ti~(3+)-TiO2-NTs photo-electrodes are obtained through electrochemical reduction, pulsed deposition, MOFs self-assembly, and sculptural reduction processes. The target photoelectrodes achieve 100% degradation of tetracycline (TC) within 90 min, and the photo-electrocatalytic synergy factor is estimated to be 4.20. Ar-Fe2O3/Ti~(3+)-TiO2-NTs photoelectrodes also exhibit excellently in multiple antibiotics and real samples. The reduction self-doping of Ti~(3+) retains vertical orientation properties of nanotubes to provide a path for electronics, and heightens the light-harvesting capacity. The pulse deposition improves the dispersibility of Fe, which is beneficial to the self-assembly of MIL-100[Fe). After sculpture-reduction processes, Ar-Fe2O3 retains the porous structure of MIL-100(Fe), and the heterojunction formed with Ti~(3+)-TiO2-NTs can significantly enhance the interface charge transfer. This work enriches the electrochemical modification strategy of TiO2-NTs, and gives new insights into the development of MOFs-based photoelectrodes.

Key words

Ti~(3+) self-doping/Electrodeposition/Photo-electrocatalysis/Metal organic frameworks/TiO2 nanotubes

引用本文复制引用

出版年

2022
Applied Catalysis

Applied Catalysis

ISSN:0926-3373
被引量39
参考文献量54
段落导航相关论文