Modelling and analysis of high efficiency silicon solar cell using double layers anti-reflection coatings (ARC)

The modernization that is currently taking over across the world is resulting in numerous advancements in a variety of industries, and the most notable and apparent development is the rising use of solar energy, which has become more prevalent every day. Most companies, residences, schools, and othe...

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Published in:Modern Physics Letters B
Main Author: Jamaluddin N.I.I.M.; Yusoff M.Z.M.; Malek M.F.
Format: Article
Language:English
Published: World Scientific 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85184064223&doi=10.1142%2fS0217984924502014&partnerID=40&md5=f937e53cf507adcb408325a6935bf872
id 2-s2.0-85184064223
spelling 2-s2.0-85184064223
Jamaluddin N.I.I.M.; Yusoff M.Z.M.; Malek M.F.
Modelling and analysis of high efficiency silicon solar cell using double layers anti-reflection coatings (ARC)
2024
Modern Physics Letters B
38
23
10.1142/S0217984924502014
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85184064223&doi=10.1142%2fS0217984924502014&partnerID=40&md5=f937e53cf507adcb408325a6935bf872
The modernization that is currently taking over across the world is resulting in numerous advancements in a variety of industries, and the most notable and apparent development is the rising use of solar energy, which has become more prevalent every day. Most companies, residences, schools, and other organizations rely mostly on solar energy as the main source of electricity. It was discovered that anti-reflective coating (ARC) had been applied to solar cells with the goal of increasing power conversion efficiency, decreasing reflection loss, and improving absorption. Although a single layer of ARC is sufficient, applying an additional layer might improve the solar cell application's effectiveness. Hence, the modeling and analysis of double layers of anti-reflection coating (ARC) with different types of materials have been investigated and evaluated using personal computer one-dimensional (PC1D) simulation software. In this study, the double-layer anti-reflection coating on the solar cell was modeled using PC1D, where this software allowed for one-dimensional simulation of the parameters required for the operation of semiconductor-based solar energy systems. The PC1D simulation reveals that SiO2/TiO2 has the highest efficiency (22.82%) and lowest reflection compared to Si3N4/TiO2 and ZnO/TiO2. Also, SiO2/TiO2 generates the highest external quantum efficiency (EQE) among ARC double layers, making it ideal for silicon solar cell applications in order to boost the solar cell's efficiency. The results for the effects of current, voltage, reflection, and EQE of the different double layers of ARC have also been studied in this paper. © 2024 World Scientific Publishing Company.
World Scientific
02179849
English
Article

author Jamaluddin N.I.I.M.; Yusoff M.Z.M.; Malek M.F.
spellingShingle Jamaluddin N.I.I.M.; Yusoff M.Z.M.; Malek M.F.
Modelling and analysis of high efficiency silicon solar cell using double layers anti-reflection coatings (ARC)
author_facet Jamaluddin N.I.I.M.; Yusoff M.Z.M.; Malek M.F.
author_sort Jamaluddin N.I.I.M.; Yusoff M.Z.M.; Malek M.F.
title Modelling and analysis of high efficiency silicon solar cell using double layers anti-reflection coatings (ARC)
title_short Modelling and analysis of high efficiency silicon solar cell using double layers anti-reflection coatings (ARC)
title_full Modelling and analysis of high efficiency silicon solar cell using double layers anti-reflection coatings (ARC)
title_fullStr Modelling and analysis of high efficiency silicon solar cell using double layers anti-reflection coatings (ARC)
title_full_unstemmed Modelling and analysis of high efficiency silicon solar cell using double layers anti-reflection coatings (ARC)
title_sort Modelling and analysis of high efficiency silicon solar cell using double layers anti-reflection coatings (ARC)
publishDate 2024
container_title Modern Physics Letters B
container_volume 38
container_issue 23
doi_str_mv 10.1142/S0217984924502014
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85184064223&doi=10.1142%2fS0217984924502014&partnerID=40&md5=f937e53cf507adcb408325a6935bf872
description The modernization that is currently taking over across the world is resulting in numerous advancements in a variety of industries, and the most notable and apparent development is the rising use of solar energy, which has become more prevalent every day. Most companies, residences, schools, and other organizations rely mostly on solar energy as the main source of electricity. It was discovered that anti-reflective coating (ARC) had been applied to solar cells with the goal of increasing power conversion efficiency, decreasing reflection loss, and improving absorption. Although a single layer of ARC is sufficient, applying an additional layer might improve the solar cell application's effectiveness. Hence, the modeling and analysis of double layers of anti-reflection coating (ARC) with different types of materials have been investigated and evaluated using personal computer one-dimensional (PC1D) simulation software. In this study, the double-layer anti-reflection coating on the solar cell was modeled using PC1D, where this software allowed for one-dimensional simulation of the parameters required for the operation of semiconductor-based solar energy systems. The PC1D simulation reveals that SiO2/TiO2 has the highest efficiency (22.82%) and lowest reflection compared to Si3N4/TiO2 and ZnO/TiO2. Also, SiO2/TiO2 generates the highest external quantum efficiency (EQE) among ARC double layers, making it ideal for silicon solar cell applications in order to boost the solar cell's efficiency. The results for the effects of current, voltage, reflection, and EQE of the different double layers of ARC have also been studied in this paper. © 2024 World Scientific Publishing Company.
publisher World Scientific
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language English
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