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Preparation and analysis of anodic aluminum oxide films with continuously tunable interpore distances

  • Xiufang Qin
  • , Jinqiong Zhang
  • , Xiaojuan Meng
  • , Chenhua Deng
  • , Lifang Zhang
  • , Guqiao Ding
  • , Hao Zeng
  • , Xiaohong Xu
  • Shanxi Normal University
  • Zhejiang University

Research output: Contribution to journalArticlepeer-review

35 Scopus citations

Abstract

Nanoporous anodic aluminum oxides are often used as templates for preparation of nanostructures such as nanodot, nanowire and nanotube arrays. The interpore distance of anodic aluminum oxide is the most important parameter in controlling the periodicity of these nanostructures. Herein we demonstrate a simple and yet powerful method to fabricate ordered anodic aluminum oxides with continuously tunable interpore distances. By using mixed solution of citric and oxalic acids with different molar ratio, the range of anodizing voltages within which self-ordered films can be formed were extended to between 40 and 300 V, resulting in the interpore distances change from 100 to 750 nm. Our work realized very broad range of interpore distances in a continuously tunable fashion and the experiment processes are easily controllable and reproducible. The dependence of the interpore distances on acid ratios in mixed solutions was discussed through analysis of anodizing current and it was found that the effective dissociation constant of the mixed acids is of great importance. The interpore distances achieved are comparable to wavelengths ranging from UV to near IR, and may have potential applications in optical meta-materials for photovoltaics and optical sensing.

Original languageEnglish
Pages (from-to)459-465
Number of pages7
JournalApplied Surface Science
Volume328
DOIs
StatePublished - Feb 15 2015

Keywords

  • Anodic aluminum oxide
  • Continuously tunableness of interpore distances
  • Mechanism of AAO growth
  • Mixed acids

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