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Asymmetric TMO–Metal–TMO Structure for Enhanced Efficiency and Long-Term Stability of Si-Based Heterojunction Solar Cells

In this study, we fabricated Si-based heterojunction solar cells (HSCs) with an asymmetric TMO–metal–TMO (TMT) structure using both MoO(3) and V(2)O(5) as the hole-selective contacts. Our HSCs offer enhanced long-term stability and effective passivation for crystal defects on the Si sur-face. We ana...

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Autores principales: Jung, Yoon-Chae, Yu, Young-Jin, Kim, Yu-Kyung, Lee, Jin Hee, Seo, Jung Hwa, Choi, Jea-Young
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10456859/
https://www.ncbi.nlm.nih.gov/pubmed/37629841
http://dx.doi.org/10.3390/ma16165550
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author Jung, Yoon-Chae
Yu, Young-Jin
Kim, Yu-Kyung
Lee, Jin Hee
Seo, Jung Hwa
Choi, Jea-Young
author_facet Jung, Yoon-Chae
Yu, Young-Jin
Kim, Yu-Kyung
Lee, Jin Hee
Seo, Jung Hwa
Choi, Jea-Young
author_sort Jung, Yoon-Chae
collection PubMed
description In this study, we fabricated Si-based heterojunction solar cells (HSCs) with an asymmetric TMO–metal–TMO (TMT) structure using both MoO(3) and V(2)O(5) as the hole-selective contacts. Our HSCs offer enhanced long-term stability and effective passivation for crystal defects on the Si sur-face. We analyzed the oxygen vacancy state and surface morphology of the MoO(3)- and V(2)O(5)-TMO thin films using X-ray photoelectron spectroscopy and atomic force microscopy to investigate their passivation characteristics for Si surface defects. From the measured minority carrier lifetime, V(2)O(5) revealed a highly improved lifetime (590 μs) compared to that of MoO(3) (122.3 μs). In addition, we evaluated the long-term stability of each TMO thin film to improve the operation stability of the HSCs. We deposited different types of TMOs as the top- and bottom-TMO layers and assessed the effect of the thickness of each TMO layer. The fabricated asymmetric TMT/Si HSCs showed noticeable improvements in efficiency (7.57%) compared to 6.29% for the conventional symmetric structure which used the same TMO material for both the top and bottom layers. Furthermore, in terms of long-term stability, the asymmetric TMT/Si HSCs demonstrated an efficiency that was 250% higher than that of symmetric TMT/Si HSCs, as determined via power conversion efficiency degradation over 2000 h which is mainly attributed by the lower oxygen vacancy of the top-TMO, V(2)O(5). These results suggest that the asymmetric TMT structure is a promising approach for the fabrication of low-cost and high-efficiency Si-based HSCs with enhanced long-term stability.
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spelling pubmed-104568592023-08-26 Asymmetric TMO–Metal–TMO Structure for Enhanced Efficiency and Long-Term Stability of Si-Based Heterojunction Solar Cells Jung, Yoon-Chae Yu, Young-Jin Kim, Yu-Kyung Lee, Jin Hee Seo, Jung Hwa Choi, Jea-Young Materials (Basel) Article In this study, we fabricated Si-based heterojunction solar cells (HSCs) with an asymmetric TMO–metal–TMO (TMT) structure using both MoO(3) and V(2)O(5) as the hole-selective contacts. Our HSCs offer enhanced long-term stability and effective passivation for crystal defects on the Si sur-face. We analyzed the oxygen vacancy state and surface morphology of the MoO(3)- and V(2)O(5)-TMO thin films using X-ray photoelectron spectroscopy and atomic force microscopy to investigate their passivation characteristics for Si surface defects. From the measured minority carrier lifetime, V(2)O(5) revealed a highly improved lifetime (590 μs) compared to that of MoO(3) (122.3 μs). In addition, we evaluated the long-term stability of each TMO thin film to improve the operation stability of the HSCs. We deposited different types of TMOs as the top- and bottom-TMO layers and assessed the effect of the thickness of each TMO layer. The fabricated asymmetric TMT/Si HSCs showed noticeable improvements in efficiency (7.57%) compared to 6.29% for the conventional symmetric structure which used the same TMO material for both the top and bottom layers. Furthermore, in terms of long-term stability, the asymmetric TMT/Si HSCs demonstrated an efficiency that was 250% higher than that of symmetric TMT/Si HSCs, as determined via power conversion efficiency degradation over 2000 h which is mainly attributed by the lower oxygen vacancy of the top-TMO, V(2)O(5). These results suggest that the asymmetric TMT structure is a promising approach for the fabrication of low-cost and high-efficiency Si-based HSCs with enhanced long-term stability. MDPI 2023-08-09 /pmc/articles/PMC10456859/ /pubmed/37629841 http://dx.doi.org/10.3390/ma16165550 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
Jung, Yoon-Chae
Yu, Young-Jin
Kim, Yu-Kyung
Lee, Jin Hee
Seo, Jung Hwa
Choi, Jea-Young
Asymmetric TMO–Metal–TMO Structure for Enhanced Efficiency and Long-Term Stability of Si-Based Heterojunction Solar Cells
title Asymmetric TMO–Metal–TMO Structure for Enhanced Efficiency and Long-Term Stability of Si-Based Heterojunction Solar Cells
title_full Asymmetric TMO–Metal–TMO Structure for Enhanced Efficiency and Long-Term Stability of Si-Based Heterojunction Solar Cells
title_fullStr Asymmetric TMO–Metal–TMO Structure for Enhanced Efficiency and Long-Term Stability of Si-Based Heterojunction Solar Cells
title_full_unstemmed Asymmetric TMO–Metal–TMO Structure for Enhanced Efficiency and Long-Term Stability of Si-Based Heterojunction Solar Cells
title_short Asymmetric TMO–Metal–TMO Structure for Enhanced Efficiency and Long-Term Stability of Si-Based Heterojunction Solar Cells
title_sort asymmetric tmo–metal–tmo structure for enhanced efficiency and long-term stability of si-based heterojunction solar cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10456859/
https://www.ncbi.nlm.nih.gov/pubmed/37629841
http://dx.doi.org/10.3390/ma16165550
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