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Design and Optimization of a Self-Protected Thin Film c-Si Solar Cell against Reverse Bias

Current mismatch due to solar cell failure or partial shading of solar panels may cause a reverse biasing of solar cells inside a photovoltaic (PV) module. The reverse-biased cells consume power instead of generating it, resulting in hot spots. To protect the solar cell against the reverse current,...

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Autores principales: Saif, Omar M., Zekry, Abdelhalim, Shaker, Ahmed, Abouelatta, Mohammed, Alanazi, Tarek I., Saeed, Ahmed
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10059038/
https://www.ncbi.nlm.nih.gov/pubmed/36984391
http://dx.doi.org/10.3390/ma16062511
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author Saif, Omar M.
Zekry, Abdelhalim
Shaker, Ahmed
Abouelatta, Mohammed
Alanazi, Tarek I.
Saeed, Ahmed
author_facet Saif, Omar M.
Zekry, Abdelhalim
Shaker, Ahmed
Abouelatta, Mohammed
Alanazi, Tarek I.
Saeed, Ahmed
author_sort Saif, Omar M.
collection PubMed
description Current mismatch due to solar cell failure or partial shading of solar panels may cause a reverse biasing of solar cells inside a photovoltaic (PV) module. The reverse-biased cells consume power instead of generating it, resulting in hot spots. To protect the solar cell against the reverse current, we introduce a novel design of a self-protected thin-film crystalline silicon (c-Si) solar cell using TCAD simulation. The proposed device achieves two distinct functions where it acts as a regular solar cell at forward bias while it performs as a backward diode upon reverse biasing. The ON-state voltage (V(ON)) of the backward equivalent diode is found to be 0.062 V, which is lower than the value for the Schottky diode usually used as a protective element in a string of solar cells. Furthermore, enhancement techniques to improve the electrical and optical characteristics of the self-protected device are investigated. The proposed solar cell is enhanced by optimizing different design parameters, such as the doping concentration and the layers’ thicknesses. The enhanced cell structure shows an improvement in the short-circuit current density (J(SC)) and the open-circuit voltage (V(OC)), and thus an increased power conversion efficiency (PCE) while the V(ON) is increased due to an increase of the J(SC). Moreover, the simulation results depict that, by the introduction of an antireflection coating (ARC) layer, the external quantum efficiency (EQE) is enhanced and the PCE is boosted to 22.43%. Although the inclusion of ARC results in increasing V(ON), it is still lower than the value of V(ON) for the Schottky diode encountered in current protection technology.
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spelling pubmed-100590382023-03-30 Design and Optimization of a Self-Protected Thin Film c-Si Solar Cell against Reverse Bias Saif, Omar M. Zekry, Abdelhalim Shaker, Ahmed Abouelatta, Mohammed Alanazi, Tarek I. Saeed, Ahmed Materials (Basel) Article Current mismatch due to solar cell failure or partial shading of solar panels may cause a reverse biasing of solar cells inside a photovoltaic (PV) module. The reverse-biased cells consume power instead of generating it, resulting in hot spots. To protect the solar cell against the reverse current, we introduce a novel design of a self-protected thin-film crystalline silicon (c-Si) solar cell using TCAD simulation. The proposed device achieves two distinct functions where it acts as a regular solar cell at forward bias while it performs as a backward diode upon reverse biasing. The ON-state voltage (V(ON)) of the backward equivalent diode is found to be 0.062 V, which is lower than the value for the Schottky diode usually used as a protective element in a string of solar cells. Furthermore, enhancement techniques to improve the electrical and optical characteristics of the self-protected device are investigated. The proposed solar cell is enhanced by optimizing different design parameters, such as the doping concentration and the layers’ thicknesses. The enhanced cell structure shows an improvement in the short-circuit current density (J(SC)) and the open-circuit voltage (V(OC)), and thus an increased power conversion efficiency (PCE) while the V(ON) is increased due to an increase of the J(SC). Moreover, the simulation results depict that, by the introduction of an antireflection coating (ARC) layer, the external quantum efficiency (EQE) is enhanced and the PCE is boosted to 22.43%. Although the inclusion of ARC results in increasing V(ON), it is still lower than the value of V(ON) for the Schottky diode encountered in current protection technology. MDPI 2023-03-21 /pmc/articles/PMC10059038/ /pubmed/36984391 http://dx.doi.org/10.3390/ma16062511 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Saif, Omar M.
Zekry, Abdelhalim
Shaker, Ahmed
Abouelatta, Mohammed
Alanazi, Tarek I.
Saeed, Ahmed
Design and Optimization of a Self-Protected Thin Film c-Si Solar Cell against Reverse Bias
title Design and Optimization of a Self-Protected Thin Film c-Si Solar Cell against Reverse Bias
title_full Design and Optimization of a Self-Protected Thin Film c-Si Solar Cell against Reverse Bias
title_fullStr Design and Optimization of a Self-Protected Thin Film c-Si Solar Cell against Reverse Bias
title_full_unstemmed Design and Optimization of a Self-Protected Thin Film c-Si Solar Cell against Reverse Bias
title_short Design and Optimization of a Self-Protected Thin Film c-Si Solar Cell against Reverse Bias
title_sort design and optimization of a self-protected thin film c-si solar cell against reverse bias
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10059038/
https://www.ncbi.nlm.nih.gov/pubmed/36984391
http://dx.doi.org/10.3390/ma16062511
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