2004Electrochemical and Solid-State LettersRequires access

Preparation of Ni Nanodot and Nanowire Arrays Using Porous Alumina on Silicon as a Template Without a Conductive Interlayer

M. T. Wu, Ing‐Chi Leu, Jung-Hsien Yen, Min‐Hsiung Hon

Open publisher page 31 citations

Abstract

Recently, many nanostructures have been prepared successfully through electrodeposition of materials into anodic porous alumina coated with a conductive layer on the bottom. Here, the fabrication of Ni nanostructures using anodic porous alumina on Si as a template without a conductive interlayer is investigated. Morphologies of Ni nanostructures were dominated by the applied voltages and an excellent replication capability for this method was revealed. The novel electrodeposition behavior in this study is quite different from the “bottom-up” electrodeposition in conventional template-mediated growth of materials. © 2004 The Electrochemical Society. All rights reserved.

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What this paper is about

Recently, many nanostructures have been prepared successfully through electrodeposition of materials into anodic porous alumina coated with a conductive layer on the bottom. Here, the fabrication of Ni nanostructures using anodic porous alumina on Si as a template without a conductive interlayer is investigated. Morphologies of Ni nanostructures were dominated by the applied voltages and an excellent replication capability for this method was revealed. The novel electrodeposition behavior in this study is quite different from the “bottom-up” electrodeposition in conventional template-mediated growth of materials. © 2004 The Electrochemical Society. All rights reserved.

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Available abstract

Recently, many nanostructures have been prepared successfully through electrodeposition of materials into anodic porous alumina coated with a conductive layer on the bottom. Here, the fabrication of Ni nanostructures using anodic porous alumina on Si as a template without a conductive interlayer is investigated. Morphologies of Ni nanostructures were dominated by the applied voltages and an excellent replication capability for this method was revealed. The novel electrodeposition behavior in this study is quite different from the “bottom-up” electrodeposition in conventional template-mediated growth of materials. © 2004 The Electrochemical Society. All rights reserved.

Key concepts: Materials science, Nanodot, Nanostructure, Nanowire, Fabrication, Nanotechnology, Electrical conductor, Porosity

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