Effect of Gamma Radiation on Structural and Optical Properties of ZnO and Mg-Doped ZnO Films Paired with Monte Carlo Simulation

In space, geostationary electronics located within the outer van Allen radiation belt are vulnerable to gamma radiation exposure. In terms of application, implementing an electronic system in a high radiation environment is impossible via conventional engineering materials such as metal alloys as th...

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Published in:Coatings
Main Author: Duinong M.; Rasmidi R.; Chee F.P.; Moh P.Y.; Salleh S.; Mohd Salleh K.A.; Ibrahim S.
Format: Article
Language:English
Published: MDPI 2022
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85140925144&doi=10.3390%2fcoatings12101590&partnerID=40&md5=52befa67362787e230f793cddc4ecaa1
id 2-s2.0-85140925144
spelling 2-s2.0-85140925144
Duinong M.; Rasmidi R.; Chee F.P.; Moh P.Y.; Salleh S.; Mohd Salleh K.A.; Ibrahim S.
Effect of Gamma Radiation on Structural and Optical Properties of ZnO and Mg-Doped ZnO Films Paired with Monte Carlo Simulation
2022
Coatings
12
10
10.3390/coatings12101590
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85140925144&doi=10.3390%2fcoatings12101590&partnerID=40&md5=52befa67362787e230f793cddc4ecaa1
In space, geostationary electronics located within the outer van Allen radiation belt are vulnerable to gamma radiation exposure. In terms of application, implementing an electronic system in a high radiation environment is impossible via conventional engineering materials such as metal alloys as they are prone to radiation damage. Exposure to such radiation causes degradation and structural defects within the semiconductor component, significantly changing their overall density. The changes in the density will then cause electronic failure, known as the single event phenomena. Thus, the radiation response of material must be thoroughly investigated before the material is applied in a harsh radiation environment, specifically for flexible space borne electronic application. In this work, potential candidates for space-borne application devices: zinc oxide (ZnO) and Mg-doped ZnO thin film with a film thickness of 300 nm, were deposited onto an indium tin oxide (ITO) substrate via radio frequency (RF) sputtering method. The fabricated films were then irradiated by Co-60 gamma ray at a dose rate of 2 kGy/hr. The total ionizing dose (TID) effect of ZnO and Mg-doped ZnO thin films were then studied. From the results obtained, degradation towards the surface morphology, optical properties, and lattice parameters caused by increasing TID, ranging from 10 kGy–300 kGy, were evaluated. The alteration can be observed on the morphological changes due to the change in the roughness root mean square (RMS) with TID, while structural changes show increased strain and decreased crystallite size. For the optical properties, band gap tends to decrease with increased dose in response to colour centre (Farbe centre) effects resulting in a decrease in transmittance spectra of the fabricated films. © 2022 by the authors.
MDPI
20796412
English
Article
All Open Access; Gold Open Access
author Duinong M.; Rasmidi R.; Chee F.P.; Moh P.Y.; Salleh S.; Mohd Salleh K.A.; Ibrahim S.
spellingShingle Duinong M.; Rasmidi R.; Chee F.P.; Moh P.Y.; Salleh S.; Mohd Salleh K.A.; Ibrahim S.
Effect of Gamma Radiation on Structural and Optical Properties of ZnO and Mg-Doped ZnO Films Paired with Monte Carlo Simulation
author_facet Duinong M.; Rasmidi R.; Chee F.P.; Moh P.Y.; Salleh S.; Mohd Salleh K.A.; Ibrahim S.
author_sort Duinong M.; Rasmidi R.; Chee F.P.; Moh P.Y.; Salleh S.; Mohd Salleh K.A.; Ibrahim S.
title Effect of Gamma Radiation on Structural and Optical Properties of ZnO and Mg-Doped ZnO Films Paired with Monte Carlo Simulation
title_short Effect of Gamma Radiation on Structural and Optical Properties of ZnO and Mg-Doped ZnO Films Paired with Monte Carlo Simulation
title_full Effect of Gamma Radiation on Structural and Optical Properties of ZnO and Mg-Doped ZnO Films Paired with Monte Carlo Simulation
title_fullStr Effect of Gamma Radiation on Structural and Optical Properties of ZnO and Mg-Doped ZnO Films Paired with Monte Carlo Simulation
title_full_unstemmed Effect of Gamma Radiation on Structural and Optical Properties of ZnO and Mg-Doped ZnO Films Paired with Monte Carlo Simulation
title_sort Effect of Gamma Radiation on Structural and Optical Properties of ZnO and Mg-Doped ZnO Films Paired with Monte Carlo Simulation
publishDate 2022
container_title Coatings
container_volume 12
container_issue 10
doi_str_mv 10.3390/coatings12101590
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85140925144&doi=10.3390%2fcoatings12101590&partnerID=40&md5=52befa67362787e230f793cddc4ecaa1
description In space, geostationary electronics located within the outer van Allen radiation belt are vulnerable to gamma radiation exposure. In terms of application, implementing an electronic system in a high radiation environment is impossible via conventional engineering materials such as metal alloys as they are prone to radiation damage. Exposure to such radiation causes degradation and structural defects within the semiconductor component, significantly changing their overall density. The changes in the density will then cause electronic failure, known as the single event phenomena. Thus, the radiation response of material must be thoroughly investigated before the material is applied in a harsh radiation environment, specifically for flexible space borne electronic application. In this work, potential candidates for space-borne application devices: zinc oxide (ZnO) and Mg-doped ZnO thin film with a film thickness of 300 nm, were deposited onto an indium tin oxide (ITO) substrate via radio frequency (RF) sputtering method. The fabricated films were then irradiated by Co-60 gamma ray at a dose rate of 2 kGy/hr. The total ionizing dose (TID) effect of ZnO and Mg-doped ZnO thin films were then studied. From the results obtained, degradation towards the surface morphology, optical properties, and lattice parameters caused by increasing TID, ranging from 10 kGy–300 kGy, were evaluated. The alteration can be observed on the morphological changes due to the change in the roughness root mean square (RMS) with TID, while structural changes show increased strain and decreased crystallite size. For the optical properties, band gap tends to decrease with increased dose in response to colour centre (Farbe centre) effects resulting in a decrease in transmittance spectra of the fabricated films. © 2022 by the authors.
publisher MDPI
issn 20796412
language English
format Article
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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