TY - JOUR
T1 - TiO2 nanotube array films grown in DMSO/EtOH-based electrolyte
T2 - Anodization current response and solvation effect
AU - Yoriya, Sorachon
AU - Bao, Ningzhong
N1 - Publisher Copyright:
© 2014 The Authors.
PY - 2014
Y1 - 2014
N2 - This work report on the fabrication of titania nanotube array film anodized in a fluoride-based electrolyte mixture of dimethyl sulfoxide and ethanol. Optimization of the anodization parameters has been examined and reported in a 3D surface plot, with the achieved result that the improved nanotube length is up to six times, as using the similar conditions reported in the previous work (Ruan et al. 2005 J. Phys. Chem. B 109, 15754.) With a systematically designed experiment, we demonstrate the more insight into interaction and solvation effect in the anodization electrolyte, particularly elucidating how electrolyte history and properties has a strong effect on the anodization current behavior. In a parallel illustration of nanotube length mapping analysis, we also investigate evolution of nanotube morphology in freshly prepared and used electrolytes in relation to the change in real-time current density for titanium anodization in dimethyl sulfoxide/ethanol mixture. It is believed that reactivity of DMSO could be inhibited by the effect of ethanol incorporation that could possibly be a drawback in slowing down those ion movements in the electrolyte, consequently affecting the pore growth and thus the nanotube length.
AB - This work report on the fabrication of titania nanotube array film anodized in a fluoride-based electrolyte mixture of dimethyl sulfoxide and ethanol. Optimization of the anodization parameters has been examined and reported in a 3D surface plot, with the achieved result that the improved nanotube length is up to six times, as using the similar conditions reported in the previous work (Ruan et al. 2005 J. Phys. Chem. B 109, 15754.) With a systematically designed experiment, we demonstrate the more insight into interaction and solvation effect in the anodization electrolyte, particularly elucidating how electrolyte history and properties has a strong effect on the anodization current behavior. In a parallel illustration of nanotube length mapping analysis, we also investigate evolution of nanotube morphology in freshly prepared and used electrolytes in relation to the change in real-time current density for titanium anodization in dimethyl sulfoxide/ethanol mixture. It is believed that reactivity of DMSO could be inhibited by the effect of ethanol incorporation that could possibly be a drawback in slowing down those ion movements in the electrolyte, consequently affecting the pore growth and thus the nanotube length.
KW - Dimethyl sulfoxide electrolyte
KW - Electrochemical anodization current response
KW - Solvation
KW - TiO nanotube array films
UR - http://www.scopus.com/inward/record.url?scp=84908676315&partnerID=8YFLogxK
M3 - 文章
AN - SCOPUS:84908676315
SN - 1452-3981
VL - 9
SP - 7182
EP - 7197
JO - International Journal of Electrochemical Science
JF - International Journal of Electrochemical Science
IS - 12
ER -