Room-temperature fabrication of au- and ag-incorporated carbon nanofibers by ion irradiation and their field emission properties

We have demonstrated the growth of Au- and Ag-incorporated carbon nanofibers (CNFs) at room temperature by Ar+ bombardment on graphite surfaces with simultaneous Au and Ag supply. The evolution of their morphology and its effects on field emission properties were investigated. The structure and dens...

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Main Authors: Yaakob, Y., Yusop, M. Z., Takahashi, C., Kalita, G., Ghosh, P., Tanemura, M.
Format: Conference or Workshop Item
Published: 2013
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Online Access:http://eprints.utm.my/id/eprint/51291/
http://iopscience.iop.org/article/10.7567/JJAP.52.11NL01/pdf
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spelling my.utm.512912017-09-18T00:51:50Z http://eprints.utm.my/id/eprint/51291/ Room-temperature fabrication of au- and ag-incorporated carbon nanofibers by ion irradiation and their field emission properties Yaakob, Y. Yusop, M. Z. Takahashi, C. Kalita, G. Ghosh, P. Tanemura, M. TJ Mechanical engineering and machinery We have demonstrated the growth of Au- and Ag-incorporated carbon nanofibers (CNFs) at room temperature by Ar+ bombardment on graphite surfaces with simultaneous Au and Ag supply. The evolution of their morphology and its effects on field emission properties were investigated. The structure and density of the grown CNFs depended on the metal supply rate. The ion-irradiated surfaces with excess metal supply featured sparsely distributed conical protrusions and a wall-like structure, while the surfaces irradiated with appropriate metal supply produced densely distributed CNF-tipped cones and a needlelike structure. Compared with Ag supply, Au supply yielded fewer CNFs in terms of number density. Thus, the CNF number density was controllable by adjusting the metal supply rate and metal species. A lower threshold field and a higher emission current density were achieved in the field emission of both metal-incorporated CNFs than of pristine CNFs (without metal incorporation). Thus, it is believed that metal-incorporated CNFs are promising for practical field emission device applications. 2013 Conference or Workshop Item PeerReviewed Yaakob, Y. and Yusop, M. Z. and Takahashi, C. and Kalita, G. and Ghosh, P. and Tanemura, M. (2013) Room-temperature fabrication of au- and ag-incorporated carbon nanofibers by ion irradiation and their field emission properties. In: Japanese Journal Of Applied Physics. http://iopscience.iop.org/article/10.7567/JJAP.52.11NL01/pdf
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Yaakob, Y.
Yusop, M. Z.
Takahashi, C.
Kalita, G.
Ghosh, P.
Tanemura, M.
Room-temperature fabrication of au- and ag-incorporated carbon nanofibers by ion irradiation and their field emission properties
description We have demonstrated the growth of Au- and Ag-incorporated carbon nanofibers (CNFs) at room temperature by Ar+ bombardment on graphite surfaces with simultaneous Au and Ag supply. The evolution of their morphology and its effects on field emission properties were investigated. The structure and density of the grown CNFs depended on the metal supply rate. The ion-irradiated surfaces with excess metal supply featured sparsely distributed conical protrusions and a wall-like structure, while the surfaces irradiated with appropriate metal supply produced densely distributed CNF-tipped cones and a needlelike structure. Compared with Ag supply, Au supply yielded fewer CNFs in terms of number density. Thus, the CNF number density was controllable by adjusting the metal supply rate and metal species. A lower threshold field and a higher emission current density were achieved in the field emission of both metal-incorporated CNFs than of pristine CNFs (without metal incorporation). Thus, it is believed that metal-incorporated CNFs are promising for practical field emission device applications.
format Conference or Workshop Item
author Yaakob, Y.
Yusop, M. Z.
Takahashi, C.
Kalita, G.
Ghosh, P.
Tanemura, M.
author_facet Yaakob, Y.
Yusop, M. Z.
Takahashi, C.
Kalita, G.
Ghosh, P.
Tanemura, M.
author_sort Yaakob, Y.
title Room-temperature fabrication of au- and ag-incorporated carbon nanofibers by ion irradiation and their field emission properties
title_short Room-temperature fabrication of au- and ag-incorporated carbon nanofibers by ion irradiation and their field emission properties
title_full Room-temperature fabrication of au- and ag-incorporated carbon nanofibers by ion irradiation and their field emission properties
title_fullStr Room-temperature fabrication of au- and ag-incorporated carbon nanofibers by ion irradiation and their field emission properties
title_full_unstemmed Room-temperature fabrication of au- and ag-incorporated carbon nanofibers by ion irradiation and their field emission properties
title_sort room-temperature fabrication of au- and ag-incorporated carbon nanofibers by ion irradiation and their field emission properties
publishDate 2013
url http://eprints.utm.my/id/eprint/51291/
http://iopscience.iop.org/article/10.7567/JJAP.52.11NL01/pdf
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score 13.211869