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Anodic Oxidation: History
Please note this is an old version of this entry, which may differ significantly from the current revision.
Subjects: Chemistry, Applied
Contributor: Jack Zhong

Anodic oxidation, or anodising, is the electrochemical growth of an oxide film on a metal made the anode in an electrolyte, where the oxide thickens because the electric field drives ions through the film already formed. On aluminium and titanium the process gives an adherent, ordered oxide rather than a loose corrosion product, and it serves both to protect the metal and to produce a functional oxide layer. Which of the two outcomes is obtained depends on the balance between oxide growth and oxide dissolution in the electrolyte: in a fluoride-containing solution the dissolution is fast enough that pores nucleate and, under the right voltage and pH, self-organise into a regular array of nanotubes whose diameter and length are set by the anodising conditions [1]. The self-ordering and the range of morphologies accessible have been reviewed, together with the behaviour of the resulting arrays in photocatalysis and electrocatalysis [2]. The electrolyte composition is the single most decisive variable, since it fixes both the dissolution rate and the species incorporated into the oxide [3]. Conducting and transparent supports allow the film to be taken directly as an electrode [4], and nanoporous layers grown on bulk metal are examined for their photocatalytic activity [5]. Cracking and the limited thermal stability of the amorphous oxide are the practical constraints.

  • anodising
  • titanium dioxide
  • nanotube array
  • fluoride electrolyte
  • oxide film
  • photocatalysis

Anodic Oxide Films and Nanostructures·Materials Chemistry·Materials Science·Physical Sciences

 

References

  1. Zhao, J.; Wang, X.; Chen, R.; Li, L.; Fabrication of titanium oxide nanotube arrays by anodic oxidation. Solid State Communications 2005, 134, 705-710, 10.1016/j.ssc.2005.02.028.
  2. Smith, Y.; Ray, R.; Carlson, K.; Sarma, B.; Misra, M.; Self-Ordered Titanium Dioxide Nanotube Arrays: Anodic Synthesis and Their Photo/Electro-Catalytic Applications. Materials 2013, 6, 2892-2957, 10.3390/ma6072892.
  3. Ohtsu, N.; Komiya, S.; Kodama, K.; Effect of electrolytes on anodic oxidation of titanium for fabricating titanium dioxide photocatalyst. Thin Solid Films 2013, 534, 70-75, 10.1016/j.tsf.2013.01.106.
  4. Okumoto, Y.; Kawakami, R.; Sato, Y.; Yoshikado, S.; Fabrication and Evaluation of Titanium Dioxide Nanotube Thin Films by Anodic Oxidation on Transparent Electrodes. Key Engineering Materials 2013, 582, 111-114, 10.4028/www.scientific.net/kem.582.111.
  5. Dikici, T.; Erol, M.; Toparli, M.; Celik, E.; Characterization and photocatalytic properties of nanoporous titanium dioxide layer fabricated on pure titanium substrates by the anodic oxidation process. Ceramics International 2014, 40, 1587-1591, 10.1016/j.ceramint.2013.07.046.
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