Effects of High-Energy Electron Beam Irradiation on the Structure, Composition and Morphological Properties of Graphene Nanoplatelet Films

This work demonstrated the effects of 1.2 GeV high-energy electron beam irradiation on a few-layers of graphene (FLG) and multi-layer graphene (MLG) films grown via an in -house hot wire chemical vapour deposition (HWCVD) system. The FLG and MLG films were grown on highly doped n-type c -Si (100) su...

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Published in:SAINS MALAYSIANA
Main Authors: Nor, Nurul Hidayah Mohamad; Anuar, Nur Afira; Talik, Noor Azrina; Abdullah, Wan Ahmad Tajuddin Wan; Kittimanapun, Kritsada; Nakajima, Hideki; Chanlek, Narong; Yahya, Mohd Fakharul Zaman Raja; Goh, Boon Tong
Format: Article
Language:English
Published: UNIV KEBANGSAAN MALAYSIA, FAC SCIENCE & TECHNOLOGY 2023
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001167153600001
author Nor
Nurul Hidayah Mohamad; Anuar
Nur Afira; Talik
Noor Azrina; Abdullah
Wan Ahmad Tajuddin Wan; Kittimanapun
Kritsada; Nakajima
Hideki; Chanlek
Narong; Yahya
Mohd Fakharul Zaman Raja; Goh
Boon Tong
spellingShingle Nor
Nurul Hidayah Mohamad; Anuar
Nur Afira; Talik
Noor Azrina; Abdullah
Wan Ahmad Tajuddin Wan; Kittimanapun
Kritsada; Nakajima
Hideki; Chanlek
Narong; Yahya
Mohd Fakharul Zaman Raja; Goh
Boon Tong
Effects of High-Energy Electron Beam Irradiation on the Structure, Composition and Morphological Properties of Graphene Nanoplatelet Films
Science & Technology - Other Topics
author_facet Nor
Nurul Hidayah Mohamad; Anuar
Nur Afira; Talik
Noor Azrina; Abdullah
Wan Ahmad Tajuddin Wan; Kittimanapun
Kritsada; Nakajima
Hideki; Chanlek
Narong; Yahya
Mohd Fakharul Zaman Raja; Goh
Boon Tong
author_sort Nor
spelling Nor, Nurul Hidayah Mohamad; Anuar, Nur Afira; Talik, Noor Azrina; Abdullah, Wan Ahmad Tajuddin Wan; Kittimanapun, Kritsada; Nakajima, Hideki; Chanlek, Narong; Yahya, Mohd Fakharul Zaman Raja; Goh, Boon Tong
Effects of High-Energy Electron Beam Irradiation on the Structure, Composition and Morphological Properties of Graphene Nanoplatelet Films
SAINS MALAYSIANA
English
Article
This work demonstrated the effects of 1.2 GeV high-energy electron beam irradiation on a few-layers of graphene (FLG) and multi-layer graphene (MLG) films grown via an in -house hot wire chemical vapour deposition (HWCVD) system. The FLG and MLG films were grown on highly doped n-type c -Si (100) substrates which were pre-treated using argon plasma (50 W) for 1 min and 10 min, respectively. The as-prepared samples were then irradiated using a 1.2 GeV high-energy electron beam with a dosage of 1.2 x 109 e-/cm2 at atmospheric and room temperature ambient conditions. The effects of the irradiation-mediated defects on the carbon lattice structure of both graphene samples were validated from the decreased sp2 C=C carbon content, and the increase in the adventitious carbon contamination C -O-C content. Raman results showed an elevation of the ID/IG ratio and blue-shift of the 2D and G band peaks for both the irradiated samples, which validated the mediated defects due to the dislocation of carbon atoms in the graphene sheets. The blue-shifted of 2D and G peaks were much more significant in the MLG than FLG which may indicate a better self-reconstructing property for the MLG atomic network, compared to the FLG. The stability of the films against high-energy electron beam irradiation was validated by their conductivity and surface topography. In conclusion, HWCVD grown graphene nanoplatelet films have high potential for graphene-based high-energy charged particle detectors.
UNIV KEBANGSAAN MALAYSIA, FAC SCIENCE & TECHNOLOGY
0126-6039

2023
52
10
10.17576/jsm-2023-5210-17
Science & Technology - Other Topics
gold
WOS:001167153600001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001167153600001
title Effects of High-Energy Electron Beam Irradiation on the Structure, Composition and Morphological Properties of Graphene Nanoplatelet Films
title_short Effects of High-Energy Electron Beam Irradiation on the Structure, Composition and Morphological Properties of Graphene Nanoplatelet Films
title_full Effects of High-Energy Electron Beam Irradiation on the Structure, Composition and Morphological Properties of Graphene Nanoplatelet Films
title_fullStr Effects of High-Energy Electron Beam Irradiation on the Structure, Composition and Morphological Properties of Graphene Nanoplatelet Films
title_full_unstemmed Effects of High-Energy Electron Beam Irradiation on the Structure, Composition and Morphological Properties of Graphene Nanoplatelet Films
title_sort Effects of High-Energy Electron Beam Irradiation on the Structure, Composition and Morphological Properties of Graphene Nanoplatelet Films
container_title SAINS MALAYSIANA
language English
format Article
description This work demonstrated the effects of 1.2 GeV high-energy electron beam irradiation on a few-layers of graphene (FLG) and multi-layer graphene (MLG) films grown via an in -house hot wire chemical vapour deposition (HWCVD) system. The FLG and MLG films were grown on highly doped n-type c -Si (100) substrates which were pre-treated using argon plasma (50 W) for 1 min and 10 min, respectively. The as-prepared samples were then irradiated using a 1.2 GeV high-energy electron beam with a dosage of 1.2 x 109 e-/cm2 at atmospheric and room temperature ambient conditions. The effects of the irradiation-mediated defects on the carbon lattice structure of both graphene samples were validated from the decreased sp2 C=C carbon content, and the increase in the adventitious carbon contamination C -O-C content. Raman results showed an elevation of the ID/IG ratio and blue-shift of the 2D and G band peaks for both the irradiated samples, which validated the mediated defects due to the dislocation of carbon atoms in the graphene sheets. The blue-shifted of 2D and G peaks were much more significant in the MLG than FLG which may indicate a better self-reconstructing property for the MLG atomic network, compared to the FLG. The stability of the films against high-energy electron beam irradiation was validated by their conductivity and surface topography. In conclusion, HWCVD grown graphene nanoplatelet films have high potential for graphene-based high-energy charged particle detectors.
publisher UNIV KEBANGSAAN MALAYSIA, FAC SCIENCE & TECHNOLOGY
issn 0126-6039

publishDate 2023
container_volume 52
container_issue 10
doi_str_mv 10.17576/jsm-2023-5210-17
topic Science & Technology - Other Topics
topic_facet Science & Technology - Other Topics
accesstype gold
id WOS:001167153600001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001167153600001
record_format wos
collection Web of Science (WoS)
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