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Hexagonal pore arrays with a 50–420 nm interpore distance formed by self-organization in anodic alumina

Journal of Applied Physics · 1998 · Vol. 84(11) · pp. 6023–6026
An‐Ping LiFrank MüllerA. BirnerKornelius NielschU. Gösele

Abstract

Self-organized hexagonal pore arrays with a 50–420 nm interpore distance in anodic alumina have been obtained by anodizing aluminum in oxalic, sulfuric, and phosphoric acid solutions. Hexagonally ordered pore arrays with distances as large as 420 nm were obtained under a constant anodic potential in phosphoric acid. By comparison of the ordered pore formation in the three types of electrolyte, it was found that the ordered pore arrays show a polycrystalline structure of a few micrometers in size. The interpore distance increases linearly with anodic potential, and the relationship obtained from disordered porous anodic alumina also fits for periodic pore arrangements. The best ordered periodic arrangements are observed when the volume expansion of the aluminum during oxidation is about 1.4 which is independent of the electrolyte. The formation mechanism of ordered arrays is consistent with a previously proposed mechanical stress model, i.e., the repulsive forces between neighboring pores at the metal/oxide interface promote the formation of hexagonally ordered pores during the oxidation process.

Anodic Oxide Films and NanostructuresSmart Materials for ConstructionConcrete Corrosion and DurabilityAnodizingMaterials scienceElectrolyteCrystallitePorosityAnodeOxideChemical engineeringAluminiumNanotechnology
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References
Self-organized formation of hexagonal pore arrays in anodic alumina
Applied Physics Letters · 1998 · 1,315 citations
Structural Features of Oxide Coatings on Aluminum
Journal of The Electrochemical Society · 1953 · 1,354 citations
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Hexagonal pore arrays with a 50–420 nm interpore distance formed by self-organization in anodic alumina · Scinovex