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N- and C-Modified TiO₂ Nanotube Arrays: Enhanced Photoelectrochemical Properties and Effect of Nanotubes Length on Photoconversion Efficiency.

Ahmed El Ruby MohamedShahzad BarghiSohrab Rohani
Published in: Nanomaterials (Basel, Switzerland) (2018)
In this investigation, a new, facile, low cost and environmental-friendly method was introduced to fabricate N- and C-modified TiO₂ nanotube arrays by immersing the as-anodized TiO₂ nanotube arrays (TNTAs) in a urea aqueous solution with mechanical agitation for a short time and keeping the TNTAs immersed in the solution for 6 h at room temperature. Then, the TNTAs were annealed at different temperatures. The produced N-, C-modified TNTAs were characterized using FESEM, EDX, XRD, XPS, UV-Vis diffuse reflectance spectra. Modified optical properties with narrow band gap energy, Eg, of 2.65 eV was obtained after annealing the modified TNTAs at 550 °C. Modified TNTAs showed enhanced photoelectochemical performance. Photoconversion efficiency (PCE) was increased from 4.35% for pristine (unmodified) TNTAs to 5.18% for modified TNTAs, an increase of 19%. Effect of nanotubes length of modified TNTAs on photoelectrochemical performance was also studied. Photocurrent density and PCE were increased by increasing nanotube length with a maximum PCE of 6.38% for nanotube length of 55 µm. This high PCE value was attributed to: band gap reduction due to C- and N-modification of TNTAs surface, increased surface area of long TNTAs compared with short TNTAs, investigated in previous studies.
Keyphrases
  • quantum dots
  • room temperature
  • low cost
  • aqueous solution
  • gold nanoparticles
  • mass spectrometry
  • sensitive detection
  • climate change
  • molecular dynamics
  • high grade
  • density functional theory
  • single molecule