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Anatase nanotube arrays were grown by anodization with high crystallinity and a well ordered nanotubular structure.
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The high-aspect-ratio pores fabricated by anodization with an applied magnetic field offer a pore diameter smaller than 30 nm and a remarkable decreased growth of side pores.
The films formed by EPD were improved binding with the substrate by anodization under high voltages with sparking, and then the anodic films consisted of Si Mg or Ti Si Mg composite oxides.
Briefly, an Al sheet was polished electrochemically before being imprinted using a Si mold with a hexagonally arranged array of nanopillars, followed by the first anodization with stable high voltage to get ordered anodic alumina channels.
This method uses anodization instability with high electric potentials and mildly acidic electrolytes that are maintained at low temperature.
Cylindrically and pentagonally shaped three-dimensional (3-D) alumina nanotemplates were fabricated by electrochemical anodization of high purity aluminum.
Self-aligned titania nanotube arrays (TNAs) were fabricated by electrochemical anodization at high voltage of 120 V in an electrolyte containing high F− concentration.
Then, heterojunctioned SrTiO3/TiO2 nanotubes with dominant {001} facets of anatase TiO2were successfully fabricated on MPT by combining anodization with hydrothermal treatment.
In the case of porous alumina, the thickness of the mask can be adjusted with high reproducibility by changing the anodization time.
Various bamboo-shaped nanotube arrays were prepared by using AC anodization with different current functions.
It is consistent with other research works that high-aspect-ratio TiO2 nano-tubes can be fabricated with rapid growth rate by anodization [4, 9, 15]. Figure 3 SEM images of top view of (a) TNA, (b) TNA-TiCl 4, and (c) TNA-TnB.
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