4.6 Article

Density-Controlled Growth of ZnO Nanowalls for High-Performance Photocatalysts

Journal

MATERIALS
Volume 15, Issue 24, Pages -

Publisher

MDPI
DOI: 10.3390/ma15249008

Keywords

ZnO nanowires; ZnO nanowalls; aqueous solution method; UVC light; methylene blue; tetracycline; reusability

Funding

  1. Ministry of Science and Technology, Taiwan
  2. Taichung Veterans General Hospital, Taiwan [MOST 109-2221-E-035-041-MY3]
  3. [TCVGH-FCU1118202]
  4. [TCVGH-1115401C]

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In this study, ZnO nanowalls were fabricated on a glass substrate by the aqueous solution method, exhibiting enhanced photocatalytic activity due to aluminum doping. The ZnO nanowalls showed higher photocatalytic efficiency and excellent recycling capacity.
ZnO nanowires and nanowalls can be fabricated on the glass substrate with a ZnO seed film and low-cost aluminum (Al) foil by the aqueous solution method (ASM), respectively. The different concentrations of ZnO precursors can use to control the densities of ZnO nanowalls. In addition, FESEM, FETEM, EDS, XRD, XPS, and CL were used to evaluate the characteristics of ZnO nanowalls. The ZnO nanowalls exhibited higher photocatalytic efficiency (99.4%) than that of ZnO nanowires (53.3%) for methylene blue (MB) degradation under UVC light irradiation at the ZnO precursors of 50 mM. This result is attributed to ZnO nanowalls with Al-doped, which can improve the separation of photogenerated electron-hole pairs for enhanced photocatalytic activity. In addition, ZnO nanowalls can also reveal higher photocatalytic activity for the degradation of tetracycline capsules (TC) rather than commercial ZnO nanopowder under UVC light irradiation. The superoxide and hydroxyl radicals play essential roles in the degradation of MB and TC solutions by the radical-trapping experiment. Furthermore, the ZnO nanowalls exhibit excellent recycling and reuse capacity for up to four cycles for the degradation of MB and TC. This study highlights the potential use of ZnO nanowalls directly grown on commercial and low-cost Al foil as noble metal-free photocatalysis.

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