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Lowering Cost Approach for CIGS-Based Solar Cell Through Optimizing Band Gap Profile and Doping of Stacked Active Layers—SCAPS Modeling

[Image: see text] In this research article, we carry out investigation on compensating the efficiency loss in thin-film CIGS photovoltaic (PV) cell due to absorber coat depth reduction. We demonstrate that the efficiency loss is mainly caused by the disruption of the charge-carrier transport. We pro...

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Autores principales: Mabvuer, Francis Tchomb, Nya, Fridolin Tchangnwa, Dzifack Kenfack, Guy Maurel, Laref, Amel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9893478/
https://www.ncbi.nlm.nih.gov/pubmed/36743006
http://dx.doi.org/10.1021/acsomega.2c06501
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author Mabvuer, Francis Tchomb
Nya, Fridolin Tchangnwa
Dzifack Kenfack, Guy Maurel
Laref, Amel
author_facet Mabvuer, Francis Tchomb
Nya, Fridolin Tchangnwa
Dzifack Kenfack, Guy Maurel
Laref, Amel
author_sort Mabvuer, Francis Tchomb
collection PubMed
description [Image: see text] In this research article, we carry out investigation on compensating the efficiency loss in thin-film CIGS photovoltaic (PV) cell due to absorber coat depth reduction. We demonstrate that the efficiency loss is mainly caused by the disruption of the charge-carrier transport. We propose an architecture engineered with a stepped band gap profile for improving the efficiency of charge-carrier transport and collection. By modifying the gallium content, we tuned the band gap profile of the active layer of a reference experimental cell from which we previously collected all parameters. Using the simulator environment SCAPS-1D, we modeled a three-steps stacking profile of active layer with different gallium contents from one layer to another. Based on the results obtained, the band gap configuration herein proposed appears to be a prospective strategy for high-performance ultrathin Cu(In,Ga)Se(2)-based PV cell architecture engineering. By combining this approach with the optimization of the active layer doping, we enhanced the yields of the reference structure from 18.93% for a 2 μm active layer to 23.36% for only 0.5 μm thickness of active layer, that is, an enhancement of 4.4%. The fill factor increased from 73.24 to 81.73%, that is, an additional stability indicator value of 8.5%. The good values of the obtained efficiency and the improvement of the fill factor value are relevant indicators of a stable device. Active layer stacking combined with a stepped band gap profile and doping level optimization is definitely providing new perspectives in thin-film CIGS high-performance PV cell achievement.
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spelling pubmed-98934782023-02-03 Lowering Cost Approach for CIGS-Based Solar Cell Through Optimizing Band Gap Profile and Doping of Stacked Active Layers—SCAPS Modeling Mabvuer, Francis Tchomb Nya, Fridolin Tchangnwa Dzifack Kenfack, Guy Maurel Laref, Amel ACS Omega [Image: see text] In this research article, we carry out investigation on compensating the efficiency loss in thin-film CIGS photovoltaic (PV) cell due to absorber coat depth reduction. We demonstrate that the efficiency loss is mainly caused by the disruption of the charge-carrier transport. We propose an architecture engineered with a stepped band gap profile for improving the efficiency of charge-carrier transport and collection. By modifying the gallium content, we tuned the band gap profile of the active layer of a reference experimental cell from which we previously collected all parameters. Using the simulator environment SCAPS-1D, we modeled a three-steps stacking profile of active layer with different gallium contents from one layer to another. Based on the results obtained, the band gap configuration herein proposed appears to be a prospective strategy for high-performance ultrathin Cu(In,Ga)Se(2)-based PV cell architecture engineering. By combining this approach with the optimization of the active layer doping, we enhanced the yields of the reference structure from 18.93% for a 2 μm active layer to 23.36% for only 0.5 μm thickness of active layer, that is, an enhancement of 4.4%. The fill factor increased from 73.24 to 81.73%, that is, an additional stability indicator value of 8.5%. The good values of the obtained efficiency and the improvement of the fill factor value are relevant indicators of a stable device. Active layer stacking combined with a stepped band gap profile and doping level optimization is definitely providing new perspectives in thin-film CIGS high-performance PV cell achievement. American Chemical Society 2023-01-20 /pmc/articles/PMC9893478/ /pubmed/36743006 http://dx.doi.org/10.1021/acsomega.2c06501 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Mabvuer, Francis Tchomb
Nya, Fridolin Tchangnwa
Dzifack Kenfack, Guy Maurel
Laref, Amel
Lowering Cost Approach for CIGS-Based Solar Cell Through Optimizing Band Gap Profile and Doping of Stacked Active Layers—SCAPS Modeling
title Lowering Cost Approach for CIGS-Based Solar Cell Through Optimizing Band Gap Profile and Doping of Stacked Active Layers—SCAPS Modeling
title_full Lowering Cost Approach for CIGS-Based Solar Cell Through Optimizing Band Gap Profile and Doping of Stacked Active Layers—SCAPS Modeling
title_fullStr Lowering Cost Approach for CIGS-Based Solar Cell Through Optimizing Band Gap Profile and Doping of Stacked Active Layers—SCAPS Modeling
title_full_unstemmed Lowering Cost Approach for CIGS-Based Solar Cell Through Optimizing Band Gap Profile and Doping of Stacked Active Layers—SCAPS Modeling
title_short Lowering Cost Approach for CIGS-Based Solar Cell Through Optimizing Band Gap Profile and Doping of Stacked Active Layers—SCAPS Modeling
title_sort lowering cost approach for cigs-based solar cell through optimizing band gap profile and doping of stacked active layers—scaps modeling
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9893478/
https://www.ncbi.nlm.nih.gov/pubmed/36743006
http://dx.doi.org/10.1021/acsomega.2c06501
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