Theoretical Study on Thin Film Dye Sensitized Photovoltaic Solar Cells

This thesis presents two models of a dye-sensitized solar cell (DSC): diffusion model and electrical model. The main purpose is to investigate interfacial charge transfer and charge transport within the semiconductor/electrolyte layer under illuminated conditions. These two interrelated models con...

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Main Author: Gong, Jiawei
Format: Others
Published: North Dakota State University 2018
Online Access:https://hdl.handle.net/10365/27177
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spelling ndltd-ndsu.edu-oai-library.ndsu.edu-10365-271772021-09-28T17:11:37Z Theoretical Study on Thin Film Dye Sensitized Photovoltaic Solar Cells Gong, Jiawei This thesis presents two models of a dye-sensitized solar cell (DSC): diffusion model and electrical model. The main purpose is to investigate interfacial charge transfer and charge transport within the semiconductor/electrolyte layer under illuminated conditions. These two interrelated models confirm that diffusion is the major driving force for electron and ion transport, while the drift of electrons is negligible. The diffusion model was utilized to simulate the temperature influence on the overall efficiency of DSC with a consideration of the voltage loss at titanium dioxide (TiO2)/ transparent conductive oxide (TCO) interface. It reveals that low temperature conditions have serious detrimental effects on the DSCs' performance. Further the electrical model was used to analyze the effect of diffusion/drift, dye loading, and electrode thickness on DSC performance. The predicted optimal electrode thickness ranges between 10-15 μm which is consistent with the thickness (10 μm) used in experimental studies published in the literature. 2018-01-04T17:46:27Z 2018-01-04T17:46:27Z 2014 text/thesis https://hdl.handle.net/10365/27177 NDSU Policy 190.6.2 https://www.ndsu.edu/fileadmin/policy/190.pdf application/pdf North Dakota State University
collection NDLTD
format Others
sources NDLTD
description This thesis presents two models of a dye-sensitized solar cell (DSC): diffusion model and electrical model. The main purpose is to investigate interfacial charge transfer and charge transport within the semiconductor/electrolyte layer under illuminated conditions. These two interrelated models confirm that diffusion is the major driving force for electron and ion transport, while the drift of electrons is negligible. The diffusion model was utilized to simulate the temperature influence on the overall efficiency of DSC with a consideration of the voltage loss at titanium dioxide (TiO2)/ transparent conductive oxide (TCO) interface. It reveals that low temperature conditions have serious detrimental effects on the DSCs' performance. Further the electrical model was used to analyze the effect of diffusion/drift, dye loading, and electrode thickness on DSC performance. The predicted optimal electrode thickness ranges between 10-15 μm which is consistent with the thickness (10 μm) used in experimental studies published in the literature.
author Gong, Jiawei
spellingShingle Gong, Jiawei
Theoretical Study on Thin Film Dye Sensitized Photovoltaic Solar Cells
author_facet Gong, Jiawei
author_sort Gong, Jiawei
title Theoretical Study on Thin Film Dye Sensitized Photovoltaic Solar Cells
title_short Theoretical Study on Thin Film Dye Sensitized Photovoltaic Solar Cells
title_full Theoretical Study on Thin Film Dye Sensitized Photovoltaic Solar Cells
title_fullStr Theoretical Study on Thin Film Dye Sensitized Photovoltaic Solar Cells
title_full_unstemmed Theoretical Study on Thin Film Dye Sensitized Photovoltaic Solar Cells
title_sort theoretical study on thin film dye sensitized photovoltaic solar cells
publisher North Dakota State University
publishDate 2018
url https://hdl.handle.net/10365/27177
work_keys_str_mv AT gongjiawei theoreticalstudyonthinfilmdyesensitizedphotovoltaicsolarcells
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