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Towards Highly Efficient Cesium Titanium Halide Based Lead-Free Double Perovskites Solar Cell by Optimizing the Interface Layers

Lead halide perovskites are the most promising compared to the other recently discovered photovoltaic materials, but despite their enormous potential, these materials are facing some serious concerns regarding lead-based toxicity. Among many lead-free perovskites, the vacancy-ordered double perovski...

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Autores principales: Moiz, Syed Abdul, Albadwani, Saud Abdulaziz, Alshaikh, Mohammed Saleh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9565611/
https://www.ncbi.nlm.nih.gov/pubmed/36234563
http://dx.doi.org/10.3390/nano12193435
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author Moiz, Syed Abdul
Albadwani, Saud Abdulaziz
Alshaikh, Mohammed Saleh
author_facet Moiz, Syed Abdul
Albadwani, Saud Abdulaziz
Alshaikh, Mohammed Saleh
author_sort Moiz, Syed Abdul
collection PubMed
description Lead halide perovskites are the most promising compared to the other recently discovered photovoltaic materials, but despite their enormous potential, these materials are facing some serious concerns regarding lead-based toxicity. Among many lead-free perovskites, the vacancy-ordered double perovskite cesium titanium halide family (Cs(2)TiX(6), X = Cl, Br, I) is very popular and heavily investigated and reported on. The main objective of this study is to design and compare an efficient cesium titanium halide-based solar cell that can be used as an alternative to lead-based perovskite solar cells. For efficient photovoltaic requirements, the hole-transport layer and electron-transport layer materials such as PEDOT:PSS and Nb(2)O(5) are selected, as these are the commonly reported materials and electronically compatible with the cesium titanium halide family. For the active layer, cesium titanium halide family members such as Cs(2)TiCl(6), Cs(2)TiBr(6), and Cs(2)TiI(6) are reported here for the devices ITO/Nb(2)O(5)/Cs(2)TiI(6)/PEDOT:PSS/Au, ITO/Nb(2)O(5)/Cs(2)TiBr(6)/PEDOT:PSS/Au, and ITO/Nb(2)O(5)/Cs(2)TiCl(6)/PEDOT:PSS/Au, respectively. To determine the most efficient photovoltaic response, all the layers (PEDOT:PSS, Nb(2)O(5), and active perovskite layer) of each device are optimized concerning thickness as well as doping density, and then each optimized device was systematically investigated for its photovoltaic responses through simulation and modeling. It is observed that the device ITO/Nb(2)O(5)/Cs(2)TiI(6)/PEDOT:PS/Au shows the most efficient photovoltaic response with little above 18.5% for maximum power-conversion efficiency.
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spelling pubmed-95656112022-10-15 Towards Highly Efficient Cesium Titanium Halide Based Lead-Free Double Perovskites Solar Cell by Optimizing the Interface Layers Moiz, Syed Abdul Albadwani, Saud Abdulaziz Alshaikh, Mohammed Saleh Nanomaterials (Basel) Article Lead halide perovskites are the most promising compared to the other recently discovered photovoltaic materials, but despite their enormous potential, these materials are facing some serious concerns regarding lead-based toxicity. Among many lead-free perovskites, the vacancy-ordered double perovskite cesium titanium halide family (Cs(2)TiX(6), X = Cl, Br, I) is very popular and heavily investigated and reported on. The main objective of this study is to design and compare an efficient cesium titanium halide-based solar cell that can be used as an alternative to lead-based perovskite solar cells. For efficient photovoltaic requirements, the hole-transport layer and electron-transport layer materials such as PEDOT:PSS and Nb(2)O(5) are selected, as these are the commonly reported materials and electronically compatible with the cesium titanium halide family. For the active layer, cesium titanium halide family members such as Cs(2)TiCl(6), Cs(2)TiBr(6), and Cs(2)TiI(6) are reported here for the devices ITO/Nb(2)O(5)/Cs(2)TiI(6)/PEDOT:PSS/Au, ITO/Nb(2)O(5)/Cs(2)TiBr(6)/PEDOT:PSS/Au, and ITO/Nb(2)O(5)/Cs(2)TiCl(6)/PEDOT:PSS/Au, respectively. To determine the most efficient photovoltaic response, all the layers (PEDOT:PSS, Nb(2)O(5), and active perovskite layer) of each device are optimized concerning thickness as well as doping density, and then each optimized device was systematically investigated for its photovoltaic responses through simulation and modeling. It is observed that the device ITO/Nb(2)O(5)/Cs(2)TiI(6)/PEDOT:PS/Au shows the most efficient photovoltaic response with little above 18.5% for maximum power-conversion efficiency. MDPI 2022-09-30 /pmc/articles/PMC9565611/ /pubmed/36234563 http://dx.doi.org/10.3390/nano12193435 Text en © 2022 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
Moiz, Syed Abdul
Albadwani, Saud Abdulaziz
Alshaikh, Mohammed Saleh
Towards Highly Efficient Cesium Titanium Halide Based Lead-Free Double Perovskites Solar Cell by Optimizing the Interface Layers
title Towards Highly Efficient Cesium Titanium Halide Based Lead-Free Double Perovskites Solar Cell by Optimizing the Interface Layers
title_full Towards Highly Efficient Cesium Titanium Halide Based Lead-Free Double Perovskites Solar Cell by Optimizing the Interface Layers
title_fullStr Towards Highly Efficient Cesium Titanium Halide Based Lead-Free Double Perovskites Solar Cell by Optimizing the Interface Layers
title_full_unstemmed Towards Highly Efficient Cesium Titanium Halide Based Lead-Free Double Perovskites Solar Cell by Optimizing the Interface Layers
title_short Towards Highly Efficient Cesium Titanium Halide Based Lead-Free Double Perovskites Solar Cell by Optimizing the Interface Layers
title_sort towards highly efficient cesium titanium halide based lead-free double perovskites solar cell by optimizing the interface layers
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9565611/
https://www.ncbi.nlm.nih.gov/pubmed/36234563
http://dx.doi.org/10.3390/nano12193435
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