A Geant4 Simulation on the Application of Multi-layer Graphene as a Detector Material in High-energy Physics; [Simulasi Geant4 ke atas Pengaplikasian Grafin Berbilang Lapisan sebagai Bahan Pengesan dalam Fizik Bertenaga Tinggi]

The excellent properties of graphene, such as its high thermal conductivity, high electrical conductivity, and high electron density, make it an ideal candidate as a detector material in high-energy physics applications. In this work, we demonstrate the feasibility of multi-layer graphene (MLG) as a...

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Published in:Sains Malaysiana
Main Author: Mohamad Nor N.H.; Anuar N.A.; Wan Abdullah W.A.T.; Goh B.T.; Yahya M.F.Z.R.
Format: Article
Language:English
Published: Penerbit Universiti Kebangsaan Malaysia 2022
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85143620160&doi=10.17576%2fjsm-2022-5110-25&partnerID=40&md5=aa86f6117808bed199142e8187f5d5eb
id 2-s2.0-85143620160
spelling 2-s2.0-85143620160
Mohamad Nor N.H.; Anuar N.A.; Wan Abdullah W.A.T.; Goh B.T.; Yahya M.F.Z.R.
A Geant4 Simulation on the Application of Multi-layer Graphene as a Detector Material in High-energy Physics; [Simulasi Geant4 ke atas Pengaplikasian Grafin Berbilang Lapisan sebagai Bahan Pengesan dalam Fizik Bertenaga Tinggi]
2022
Sains Malaysiana
51
10
10.17576/jsm-2022-5110-25
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85143620160&doi=10.17576%2fjsm-2022-5110-25&partnerID=40&md5=aa86f6117808bed199142e8187f5d5eb
The excellent properties of graphene, such as its high thermal conductivity, high electrical conductivity, and high electron density, make it an ideal candidate as a detector material in high-energy physics applications. In this work, we demonstrate the feasibility of multi-layer graphene (MLG) as a detector material in a high-energy environment. The Geant4 software package was used to estimate the energy of the deposited electrons within various thicknesses of MLG, ranging from 3 to 20 nm. The efficiency of the MLG as a detector material was further analyzed from the scattering angle and the yield of the secondary particles produced from the electron interaction with the material. The incident electron’s kinetic energy used herein ranged between 30 keV and 1 GeV, at a particle fluence of 1×107 e/cm2. The results show that the deposited energy was relatively low for the interaction with 1 MeV electrons, and dramatically increased as the thickness increases beyond 15 nm. This result was further supported by the highest yield of gamma radiation recorded by the interaction with a kinetic energy larger than 1 MeV, for thickness larger than 15 nm. The results suggest that the MLG works best as a charged particle detector in low energy ranges, while for high energy ranges, a thickness over 15 nm is suggested. The findings demonstrate that a MLG with a thickness larger than 15 nm could potentially be used as a detector material in high-energy conditions. © 2022 Penerbit Universiti Kebangsaan Malaysia. All rights reserved.
Penerbit Universiti Kebangsaan Malaysia
1266039
English
Article
All Open Access; Gold Open Access
author Mohamad Nor N.H.; Anuar N.A.; Wan Abdullah W.A.T.; Goh B.T.; Yahya M.F.Z.R.
spellingShingle Mohamad Nor N.H.; Anuar N.A.; Wan Abdullah W.A.T.; Goh B.T.; Yahya M.F.Z.R.
A Geant4 Simulation on the Application of Multi-layer Graphene as a Detector Material in High-energy Physics; [Simulasi Geant4 ke atas Pengaplikasian Grafin Berbilang Lapisan sebagai Bahan Pengesan dalam Fizik Bertenaga Tinggi]
author_facet Mohamad Nor N.H.; Anuar N.A.; Wan Abdullah W.A.T.; Goh B.T.; Yahya M.F.Z.R.
author_sort Mohamad Nor N.H.; Anuar N.A.; Wan Abdullah W.A.T.; Goh B.T.; Yahya M.F.Z.R.
title A Geant4 Simulation on the Application of Multi-layer Graphene as a Detector Material in High-energy Physics; [Simulasi Geant4 ke atas Pengaplikasian Grafin Berbilang Lapisan sebagai Bahan Pengesan dalam Fizik Bertenaga Tinggi]
title_short A Geant4 Simulation on the Application of Multi-layer Graphene as a Detector Material in High-energy Physics; [Simulasi Geant4 ke atas Pengaplikasian Grafin Berbilang Lapisan sebagai Bahan Pengesan dalam Fizik Bertenaga Tinggi]
title_full A Geant4 Simulation on the Application of Multi-layer Graphene as a Detector Material in High-energy Physics; [Simulasi Geant4 ke atas Pengaplikasian Grafin Berbilang Lapisan sebagai Bahan Pengesan dalam Fizik Bertenaga Tinggi]
title_fullStr A Geant4 Simulation on the Application of Multi-layer Graphene as a Detector Material in High-energy Physics; [Simulasi Geant4 ke atas Pengaplikasian Grafin Berbilang Lapisan sebagai Bahan Pengesan dalam Fizik Bertenaga Tinggi]
title_full_unstemmed A Geant4 Simulation on the Application of Multi-layer Graphene as a Detector Material in High-energy Physics; [Simulasi Geant4 ke atas Pengaplikasian Grafin Berbilang Lapisan sebagai Bahan Pengesan dalam Fizik Bertenaga Tinggi]
title_sort A Geant4 Simulation on the Application of Multi-layer Graphene as a Detector Material in High-energy Physics; [Simulasi Geant4 ke atas Pengaplikasian Grafin Berbilang Lapisan sebagai Bahan Pengesan dalam Fizik Bertenaga Tinggi]
publishDate 2022
container_title Sains Malaysiana
container_volume 51
container_issue 10
doi_str_mv 10.17576/jsm-2022-5110-25
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85143620160&doi=10.17576%2fjsm-2022-5110-25&partnerID=40&md5=aa86f6117808bed199142e8187f5d5eb
description The excellent properties of graphene, such as its high thermal conductivity, high electrical conductivity, and high electron density, make it an ideal candidate as a detector material in high-energy physics applications. In this work, we demonstrate the feasibility of multi-layer graphene (MLG) as a detector material in a high-energy environment. The Geant4 software package was used to estimate the energy of the deposited electrons within various thicknesses of MLG, ranging from 3 to 20 nm. The efficiency of the MLG as a detector material was further analyzed from the scattering angle and the yield of the secondary particles produced from the electron interaction with the material. The incident electron’s kinetic energy used herein ranged between 30 keV and 1 GeV, at a particle fluence of 1×107 e/cm2. The results show that the deposited energy was relatively low for the interaction with 1 MeV electrons, and dramatically increased as the thickness increases beyond 15 nm. This result was further supported by the highest yield of gamma radiation recorded by the interaction with a kinetic energy larger than 1 MeV, for thickness larger than 15 nm. The results suggest that the MLG works best as a charged particle detector in low energy ranges, while for high energy ranges, a thickness over 15 nm is suggested. The findings demonstrate that a MLG with a thickness larger than 15 nm could potentially be used as a detector material in high-energy conditions. © 2022 Penerbit Universiti Kebangsaan Malaysia. All rights reserved.
publisher Penerbit Universiti Kebangsaan Malaysia
issn 1266039
language English
format Article
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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