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Crystal Growth Promotion and Defects Healing Enable Minimum Open‐Circuit Voltage Deficit in Antimony Selenide Solar Cells

Antimony selenide (Sb(2)Se(3)) is an ideal photovoltaic candidate profiting from its advantageous material characteristics and superior optoelectronic properties, and has gained considerable development in recent years. However, the further device efficiency breakthrough is largely plagued by severe...

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Autores principales: Liang, Guangxing, Chen, Mingdong, Ishaq, Muhammad, Li, Xinru, Tang, Rong, Zheng, Zhuanghao, Su, Zhenghua, Fan, Ping, Zhang, Xianghua, Chen, Shuo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8948594/
https://www.ncbi.nlm.nih.gov/pubmed/35088583
http://dx.doi.org/10.1002/advs.202105142
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author Liang, Guangxing
Chen, Mingdong
Ishaq, Muhammad
Li, Xinru
Tang, Rong
Zheng, Zhuanghao
Su, Zhenghua
Fan, Ping
Zhang, Xianghua
Chen, Shuo
author_facet Liang, Guangxing
Chen, Mingdong
Ishaq, Muhammad
Li, Xinru
Tang, Rong
Zheng, Zhuanghao
Su, Zhenghua
Fan, Ping
Zhang, Xianghua
Chen, Shuo
author_sort Liang, Guangxing
collection PubMed
description Antimony selenide (Sb(2)Se(3)) is an ideal photovoltaic candidate profiting from its advantageous material characteristics and superior optoelectronic properties, and has gained considerable development in recent years. However, the further device efficiency breakthrough is largely plagued by severe open‐circuit voltage (V (OC)) deficit under the existence of multiple defect states and detrimental recombination loss. In this work, an effective absorber layer growth engineering involved with vapor transport deposition and post‐selenization is developed to grow Sb(2)Se(3) thin films. High‐quality Sb(2)Se(3) with large compact crystal grains, benign [hk1] growth orientation, stoichiometric chemical composition, and suitable direct bandgap are successfully fulfilled under an optimized post‐selenization scenario. Planar Sb(2)Se(3) thin‐film solar cells with substrate configuration of Mo/Sb(2)Se(3)/CdS/ITO/Ag are constructed. By contrast, such engineering effort can remarkably mitigate the device V (OC) deficit, owing to the healed detrimental defects, the suppressed interface and space‐charge region recombination, the prolonged carrier lifetime, and the enhanced charge transport. Accordingly, a minimum V (OC) deficit of 0.647 V contributes to a record V (OC) of 0.513 V, a champion device with highly interesting efficiency of 7.40% is also comparable to those state‐of‐the‐art Sb(2)Se(3) solar cells, paving a bright avenue to broaden its scope of photovoltaic applications.
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spelling pubmed-89485942022-03-29 Crystal Growth Promotion and Defects Healing Enable Minimum Open‐Circuit Voltage Deficit in Antimony Selenide Solar Cells Liang, Guangxing Chen, Mingdong Ishaq, Muhammad Li, Xinru Tang, Rong Zheng, Zhuanghao Su, Zhenghua Fan, Ping Zhang, Xianghua Chen, Shuo Adv Sci (Weinh) Research Articles Antimony selenide (Sb(2)Se(3)) is an ideal photovoltaic candidate profiting from its advantageous material characteristics and superior optoelectronic properties, and has gained considerable development in recent years. However, the further device efficiency breakthrough is largely plagued by severe open‐circuit voltage (V (OC)) deficit under the existence of multiple defect states and detrimental recombination loss. In this work, an effective absorber layer growth engineering involved with vapor transport deposition and post‐selenization is developed to grow Sb(2)Se(3) thin films. High‐quality Sb(2)Se(3) with large compact crystal grains, benign [hk1] growth orientation, stoichiometric chemical composition, and suitable direct bandgap are successfully fulfilled under an optimized post‐selenization scenario. Planar Sb(2)Se(3) thin‐film solar cells with substrate configuration of Mo/Sb(2)Se(3)/CdS/ITO/Ag are constructed. By contrast, such engineering effort can remarkably mitigate the device V (OC) deficit, owing to the healed detrimental defects, the suppressed interface and space‐charge region recombination, the prolonged carrier lifetime, and the enhanced charge transport. Accordingly, a minimum V (OC) deficit of 0.647 V contributes to a record V (OC) of 0.513 V, a champion device with highly interesting efficiency of 7.40% is also comparable to those state‐of‐the‐art Sb(2)Se(3) solar cells, paving a bright avenue to broaden its scope of photovoltaic applications. John Wiley and Sons Inc. 2022-01-28 /pmc/articles/PMC8948594/ /pubmed/35088583 http://dx.doi.org/10.1002/advs.202105142 Text en © 2022 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Liang, Guangxing
Chen, Mingdong
Ishaq, Muhammad
Li, Xinru
Tang, Rong
Zheng, Zhuanghao
Su, Zhenghua
Fan, Ping
Zhang, Xianghua
Chen, Shuo
Crystal Growth Promotion and Defects Healing Enable Minimum Open‐Circuit Voltage Deficit in Antimony Selenide Solar Cells
title Crystal Growth Promotion and Defects Healing Enable Minimum Open‐Circuit Voltage Deficit in Antimony Selenide Solar Cells
title_full Crystal Growth Promotion and Defects Healing Enable Minimum Open‐Circuit Voltage Deficit in Antimony Selenide Solar Cells
title_fullStr Crystal Growth Promotion and Defects Healing Enable Minimum Open‐Circuit Voltage Deficit in Antimony Selenide Solar Cells
title_full_unstemmed Crystal Growth Promotion and Defects Healing Enable Minimum Open‐Circuit Voltage Deficit in Antimony Selenide Solar Cells
title_short Crystal Growth Promotion and Defects Healing Enable Minimum Open‐Circuit Voltage Deficit in Antimony Selenide Solar Cells
title_sort crystal growth promotion and defects healing enable minimum open‐circuit voltage deficit in antimony selenide solar cells
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8948594/
https://www.ncbi.nlm.nih.gov/pubmed/35088583
http://dx.doi.org/10.1002/advs.202105142
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