The effect of applied voltage and anodisation time on anodized aluminum oxide nanostructures

The use of anodized aluminum oxide (AAO) is vastly being explored in recent years. The application includes molecular separation, sensing, energy storage and template synthesis for various nanostructures. The reason AAO is preferred was because of the ability to control the nanopore structure by man...

Full description

Bibliographic Details
Published in:Materials Science Forum
Main Author: Mahmud A.H.; Habiballah A.S.; Jani A.M.M.
Format: Conference paper
Language:English
Published: Trans Tech Publications Ltd 2015
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-84954449404&doi=10.4028%2fwww.scientific.net%2fMSF.819.103&partnerID=40&md5=333a1d2226584e09a029307d0e5f1e13
id 2-s2.0-84954449404
spelling 2-s2.0-84954449404
Mahmud A.H.; Habiballah A.S.; Jani A.M.M.
The effect of applied voltage and anodisation time on anodized aluminum oxide nanostructures
2015
Materials Science Forum
819

10.4028/www.scientific.net/MSF.819.103
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84954449404&doi=10.4028%2fwww.scientific.net%2fMSF.819.103&partnerID=40&md5=333a1d2226584e09a029307d0e5f1e13
The use of anodized aluminum oxide (AAO) is vastly being explored in recent years. The application includes molecular separation, sensing, energy storage and template synthesis for various nanostructures. The reason AAO is preferred was because of the ability to control the nanopore structure by manipulating some factors during the anodisation process. This study will investigate the exploitation of voltage and anodisation time during the anodisation process and the effect it has on the nanopore structure of the AAO by examining the structure under Field Emission Scanning Electron Microscope (FE-SEM). The experiment was carried out by anodizing aluminum foil in 0.3 M oxalic acid as electrolyte under the constant temperature of 5 oC. The applied voltage was varied from 40, 60 and 100 V with different anodisation time. The outcome of this study demonstrates that applied voltage has a proportional relationship with the developed pore size. Increasing the applied voltage from 40 to 100 V had increased the pore size of the AAO from 38 nm to 186 nm, respectively. Aluminium oxide anodized at 60 V demonstrates pore size in the range of 76 nm. Prolong anodisation time had improved the pore morphology of anodized aluminium oxide in the case of 40 V, however, the pore wall starts to collapse when anodisation time is more than 4 minutes at 100 V. © (2015) Trans Tech Publications, Switzerland.
Trans Tech Publications Ltd
2555476
English
Conference paper

author Mahmud A.H.; Habiballah A.S.; Jani A.M.M.
spellingShingle Mahmud A.H.; Habiballah A.S.; Jani A.M.M.
The effect of applied voltage and anodisation time on anodized aluminum oxide nanostructures
author_facet Mahmud A.H.; Habiballah A.S.; Jani A.M.M.
author_sort Mahmud A.H.; Habiballah A.S.; Jani A.M.M.
title The effect of applied voltage and anodisation time on anodized aluminum oxide nanostructures
title_short The effect of applied voltage and anodisation time on anodized aluminum oxide nanostructures
title_full The effect of applied voltage and anodisation time on anodized aluminum oxide nanostructures
title_fullStr The effect of applied voltage and anodisation time on anodized aluminum oxide nanostructures
title_full_unstemmed The effect of applied voltage and anodisation time on anodized aluminum oxide nanostructures
title_sort The effect of applied voltage and anodisation time on anodized aluminum oxide nanostructures
publishDate 2015
container_title Materials Science Forum
container_volume 819
container_issue
doi_str_mv 10.4028/www.scientific.net/MSF.819.103
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-84954449404&doi=10.4028%2fwww.scientific.net%2fMSF.819.103&partnerID=40&md5=333a1d2226584e09a029307d0e5f1e13
description The use of anodized aluminum oxide (AAO) is vastly being explored in recent years. The application includes molecular separation, sensing, energy storage and template synthesis for various nanostructures. The reason AAO is preferred was because of the ability to control the nanopore structure by manipulating some factors during the anodisation process. This study will investigate the exploitation of voltage and anodisation time during the anodisation process and the effect it has on the nanopore structure of the AAO by examining the structure under Field Emission Scanning Electron Microscope (FE-SEM). The experiment was carried out by anodizing aluminum foil in 0.3 M oxalic acid as electrolyte under the constant temperature of 5 oC. The applied voltage was varied from 40, 60 and 100 V with different anodisation time. The outcome of this study demonstrates that applied voltage has a proportional relationship with the developed pore size. Increasing the applied voltage from 40 to 100 V had increased the pore size of the AAO from 38 nm to 186 nm, respectively. Aluminium oxide anodized at 60 V demonstrates pore size in the range of 76 nm. Prolong anodisation time had improved the pore morphology of anodized aluminium oxide in the case of 40 V, however, the pore wall starts to collapse when anodisation time is more than 4 minutes at 100 V. © (2015) Trans Tech Publications, Switzerland.
publisher Trans Tech Publications Ltd
issn 2555476
language English
format Conference paper
accesstype
record_format scopus
collection Scopus
_version_ 1809677608278818816