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Steps Towards Industrialization of Cu–III–VI(2)Thin‐Film Solar Cells:Linking Materials/Device Designs to Process Design For Non‐stoichiometric Photovoltaic Materials

The concept of in‐line sputtering and selenization become industrial standard for Cu–III–VI(2) solar cell fabrication, but still it's very difficult to control and predict the optical and electrical parameters, which are closely related to the chemical composition distribution of the thin film....

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Autores principales: Hwang, Huey‐Liang, Chang, Hsueh‐Hsin, Sharma, Poonam, Letha, Arya Jagadhamma, Shao, Lexi, Zhang, Yafei, Tseng, Bae‐Heng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5096115/
https://www.ncbi.nlm.nih.gov/pubmed/27840790
http://dx.doi.org/10.1002/advs.201500196
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author Hwang, Huey‐Liang
Chang, Hsueh‐Hsin
Sharma, Poonam
Letha, Arya Jagadhamma
Shao, Lexi
Zhang, Yafei
Tseng, Bae‐Heng
author_facet Hwang, Huey‐Liang
Chang, Hsueh‐Hsin
Sharma, Poonam
Letha, Arya Jagadhamma
Shao, Lexi
Zhang, Yafei
Tseng, Bae‐Heng
author_sort Hwang, Huey‐Liang
collection PubMed
description The concept of in‐line sputtering and selenization become industrial standard for Cu–III–VI(2) solar cell fabrication, but still it's very difficult to control and predict the optical and electrical parameters, which are closely related to the chemical composition distribution of the thin film. The present review article addresses onto the material design, device design and process design using parameters closely related to the chemical compositions. Its variation leads to change in the Poisson equation, current equation, and continuity equation governing the device design. To make the device design much realistic and meaningful, we need to build a model that relates the opto‐electrical properties to the chemical composition. The material parameters as well as device structural parameters are loaded into the process simulation to give a complete set of process control parameters. The neutral defect concentrations of non‐stoichiometric CuMSe(2) (M = In and Ga) have been calculated under the specific atomic chemical potential conditions using this methodology. The optical and electrical properties have also been investigated for the development of a full‐function analytical solar cell simulator. The future prospects regarding the development of copper–indium–gallium–selenide thin film solar cells have also been discussed.
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spelling pubmed-50961152016-11-09 Steps Towards Industrialization of Cu–III–VI(2)Thin‐Film Solar Cells:Linking Materials/Device Designs to Process Design For Non‐stoichiometric Photovoltaic Materials Hwang, Huey‐Liang Chang, Hsueh‐Hsin Sharma, Poonam Letha, Arya Jagadhamma Shao, Lexi Zhang, Yafei Tseng, Bae‐Heng Adv Sci (Weinh) Reviews The concept of in‐line sputtering and selenization become industrial standard for Cu–III–VI(2) solar cell fabrication, but still it's very difficult to control and predict the optical and electrical parameters, which are closely related to the chemical composition distribution of the thin film. The present review article addresses onto the material design, device design and process design using parameters closely related to the chemical compositions. Its variation leads to change in the Poisson equation, current equation, and continuity equation governing the device design. To make the device design much realistic and meaningful, we need to build a model that relates the opto‐electrical properties to the chemical composition. The material parameters as well as device structural parameters are loaded into the process simulation to give a complete set of process control parameters. The neutral defect concentrations of non‐stoichiometric CuMSe(2) (M = In and Ga) have been calculated under the specific atomic chemical potential conditions using this methodology. The optical and electrical properties have also been investigated for the development of a full‐function analytical solar cell simulator. The future prospects regarding the development of copper–indium–gallium–selenide thin film solar cells have also been discussed. John Wiley and Sons Inc. 2016-05-17 /pmc/articles/PMC5096115/ /pubmed/27840790 http://dx.doi.org/10.1002/advs.201500196 Text en © 2016 The Authors. Published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Reviews
Hwang, Huey‐Liang
Chang, Hsueh‐Hsin
Sharma, Poonam
Letha, Arya Jagadhamma
Shao, Lexi
Zhang, Yafei
Tseng, Bae‐Heng
Steps Towards Industrialization of Cu–III–VI(2)Thin‐Film Solar Cells:Linking Materials/Device Designs to Process Design For Non‐stoichiometric Photovoltaic Materials
title Steps Towards Industrialization of Cu–III–VI(2)Thin‐Film Solar Cells:Linking Materials/Device Designs to Process Design For Non‐stoichiometric Photovoltaic Materials
title_full Steps Towards Industrialization of Cu–III–VI(2)Thin‐Film Solar Cells:Linking Materials/Device Designs to Process Design For Non‐stoichiometric Photovoltaic Materials
title_fullStr Steps Towards Industrialization of Cu–III–VI(2)Thin‐Film Solar Cells:Linking Materials/Device Designs to Process Design For Non‐stoichiometric Photovoltaic Materials
title_full_unstemmed Steps Towards Industrialization of Cu–III–VI(2)Thin‐Film Solar Cells:Linking Materials/Device Designs to Process Design For Non‐stoichiometric Photovoltaic Materials
title_short Steps Towards Industrialization of Cu–III–VI(2)Thin‐Film Solar Cells:Linking Materials/Device Designs to Process Design For Non‐stoichiometric Photovoltaic Materials
title_sort steps towards industrialization of cu–iii–vi(2)thin‐film solar cells:linking materials/device designs to process design for non‐stoichiometric photovoltaic materials
topic Reviews
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5096115/
https://www.ncbi.nlm.nih.gov/pubmed/27840790
http://dx.doi.org/10.1002/advs.201500196
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