Mechanochemical synthesis of CNT/ZnO hybrid materials

A study on the synthesis of multiwalled carbon nanotubes (MWCNT) and zinc oxide (~no) hybrid materials using the mecahnochemical technique has been conducted. MWCNT was dispersed in sodium dodecyl sulfate (SDS) solution. ZnO was formed at milling time of2, 5 and 10 hours. The XRD results showed o...

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Main Authors: Siti Sumaiyah, S.A.A., Nurhana Ilmira, H., Nunshaimah, S., Syamsyir Akmal, S., Azhan, H., Siti Nor Hafiza, M.Y., Yusoff, M.A., Roslan, M.N.
Format: Conference or Workshop Item
Language:English
Published: 2014
Subjects:
Online Access:http://eprints.um.edu.my/15942/1/0001.pdf
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author Siti Sumaiyah, S.A.A.
Nurhana Ilmira, H.
Nunshaimah, S.
Syamsyir Akmal, S.
Azhan, H.
Siti Nor Hafiza, M.Y.
Yusoff, M.A.
Roslan, M.N.
author_facet Siti Sumaiyah, S.A.A.
Nurhana Ilmira, H.
Nunshaimah, S.
Syamsyir Akmal, S.
Azhan, H.
Siti Nor Hafiza, M.Y.
Yusoff, M.A.
Roslan, M.N.
author_sort Siti Sumaiyah, S.A.A.
collection UM
description A study on the synthesis of multiwalled carbon nanotubes (MWCNT) and zinc oxide (~no) hybrid materials using the mecahnochemical technique has been conducted. MWCNT was dispersed in sodium dodecyl sulfate (SDS) solution. ZnO was formed at milling time of2, 5 and 10 hours. The XRD results showed only small peaks of ZnO. This suggests that at longer milling time, the ZnO crystals were either become amorphous or have reduced in sized so as not to be detected Using XRD. ZnO has also been doped with Manganese (Mn) which have affected the crystal structure and surface morphology of the sample. In summary, we have demonstrated a simple and efficient technique for producing CNT/ZnO hybrid materials that may have enhanced applications as chemical sensors, fuel cell electrodes and piezoelectric generators.
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spelling um.eprints-159422016-06-20T00:14:39Z http://eprints.um.edu.my/15942/ Mechanochemical synthesis of CNT/ZnO hybrid materials Siti Sumaiyah, S.A.A. Nurhana Ilmira, H. Nunshaimah, S. Syamsyir Akmal, S. Azhan, H. Siti Nor Hafiza, M.Y. Yusoff, M.A. Roslan, M.N. Q Science (General) QC Physics A study on the synthesis of multiwalled carbon nanotubes (MWCNT) and zinc oxide (~no) hybrid materials using the mecahnochemical technique has been conducted. MWCNT was dispersed in sodium dodecyl sulfate (SDS) solution. ZnO was formed at milling time of2, 5 and 10 hours. The XRD results showed only small peaks of ZnO. This suggests that at longer milling time, the ZnO crystals were either become amorphous or have reduced in sized so as not to be detected Using XRD. ZnO has also been doped with Manganese (Mn) which have affected the crystal structure and surface morphology of the sample. In summary, we have demonstrated a simple and efficient technique for producing CNT/ZnO hybrid materials that may have enhanced applications as chemical sensors, fuel cell electrodes and piezoelectric generators. 2014 Conference or Workshop Item PeerReviewed application/pdf en http://eprints.um.edu.my/15942/1/0001.pdf Siti Sumaiyah, S.A.A. and Nurhana Ilmira, H. and Nunshaimah, S. and Syamsyir Akmal, S. and Azhan, H. and Siti Nor Hafiza, M.Y. and Yusoff, M.A. and Roslan, M.N. (2014) Mechanochemical synthesis of CNT/ZnO hybrid materials. In: 28th Regional Conference on Solid State Science and Technology 2014 (RCSSST 2014)., 25 - 27 November 2014, Cameron Highland, Pahang, Malaysia..
spellingShingle Q Science (General)
QC Physics
Siti Sumaiyah, S.A.A.
Nurhana Ilmira, H.
Nunshaimah, S.
Syamsyir Akmal, S.
Azhan, H.
Siti Nor Hafiza, M.Y.
Yusoff, M.A.
Roslan, M.N.
Mechanochemical synthesis of CNT/ZnO hybrid materials
title Mechanochemical synthesis of CNT/ZnO hybrid materials
title_full Mechanochemical synthesis of CNT/ZnO hybrid materials
title_fullStr Mechanochemical synthesis of CNT/ZnO hybrid materials
title_full_unstemmed Mechanochemical synthesis of CNT/ZnO hybrid materials
title_short Mechanochemical synthesis of CNT/ZnO hybrid materials
title_sort mechanochemical synthesis of cnt zno hybrid materials
topic Q Science (General)
QC Physics
url http://eprints.um.edu.my/15942/1/0001.pdf
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