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Superior Conductivity of Transparent ZnO/MoS(2) Composite Films for Optoelectronic and Solar Cell Applications

The use of transparent conductive oxides in optoelectronics created a revolution where new-generation materials with high transmittance, low sheet resistance values, durability, and portability can be achieved without decreasing efficiency or increasing costs. Transparent ZnO/MoS(2) sandwich-structu...

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Autores principales: Tareq, Shahad, Kirkil, Gokhan, Özuğur Uysal, Bengü
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10671341/
https://www.ncbi.nlm.nih.gov/pubmed/37998996
http://dx.doi.org/10.3390/gels9110906
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author Tareq, Shahad
Kirkil, Gokhan
Özuğur Uysal, Bengü
author_facet Tareq, Shahad
Kirkil, Gokhan
Özuğur Uysal, Bengü
author_sort Tareq, Shahad
collection PubMed
description The use of transparent conductive oxides in optoelectronics created a revolution where new-generation materials with high transmittance, low sheet resistance values, durability, and portability can be achieved without decreasing efficiency or increasing costs. Transparent ZnO/MoS(2) sandwich-structured conductive composite films were produced in this study via the sol–gel method, which is considered the most efficient method due to its simple process and low cost. The crystal structure properties of ZnO/MoS(2) were characterized via X-ray diffraction (XRD) patterns. The crystal sizes of ZnO films doped with different amounts of MoS(2) were determined. A UV–visible absorption spectrometer was used to perform the spectroscopic analysis of the film. The area under the absorption curve and the full width of the half-maxima of absorbance data were calculated. Using these values, the optimum amount of MoS(2) was determined for the best additive distribution. In addition, in order to determine the best transparent conductive material, resistance values measured via the four-point probe method were compared for different MoS(2) additive amounts. The optical and electrical characterizations of transparent ZnO/MoS(2) conductive oxide films were investigated. According to the parameters obtained via UV–vis spectroscopy, XRD, and four-point probe measurements, the most effective dispersion that exhibits a low width ratio and high resonance ratio was found for ZnO/MoS(2) with a doping amount of 4 mg, the crystallite size of the films was found to be within the range of 21.5 and 24.6 nm, and these observations demonstrated a figure-of-merit value of more than 4.8 × 10(−2) with respect to these sandwich-structured films. Compared to the values of previous studies on various transparent ZnO-doped conductive oxide materials, it is possible to claim that these new films have a structure that is very similar to the transparent conductivity characteristics of other films, and they may even be superior relative to some MoS(2) amounts.
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spelling pubmed-106713412023-11-16 Superior Conductivity of Transparent ZnO/MoS(2) Composite Films for Optoelectronic and Solar Cell Applications Tareq, Shahad Kirkil, Gokhan Özuğur Uysal, Bengü Gels Article The use of transparent conductive oxides in optoelectronics created a revolution where new-generation materials with high transmittance, low sheet resistance values, durability, and portability can be achieved without decreasing efficiency or increasing costs. Transparent ZnO/MoS(2) sandwich-structured conductive composite films were produced in this study via the sol–gel method, which is considered the most efficient method due to its simple process and low cost. The crystal structure properties of ZnO/MoS(2) were characterized via X-ray diffraction (XRD) patterns. The crystal sizes of ZnO films doped with different amounts of MoS(2) were determined. A UV–visible absorption spectrometer was used to perform the spectroscopic analysis of the film. The area under the absorption curve and the full width of the half-maxima of absorbance data were calculated. Using these values, the optimum amount of MoS(2) was determined for the best additive distribution. In addition, in order to determine the best transparent conductive material, resistance values measured via the four-point probe method were compared for different MoS(2) additive amounts. The optical and electrical characterizations of transparent ZnO/MoS(2) conductive oxide films were investigated. According to the parameters obtained via UV–vis spectroscopy, XRD, and four-point probe measurements, the most effective dispersion that exhibits a low width ratio and high resonance ratio was found for ZnO/MoS(2) with a doping amount of 4 mg, the crystallite size of the films was found to be within the range of 21.5 and 24.6 nm, and these observations demonstrated a figure-of-merit value of more than 4.8 × 10(−2) with respect to these sandwich-structured films. Compared to the values of previous studies on various transparent ZnO-doped conductive oxide materials, it is possible to claim that these new films have a structure that is very similar to the transparent conductivity characteristics of other films, and they may even be superior relative to some MoS(2) amounts. MDPI 2023-11-16 /pmc/articles/PMC10671341/ /pubmed/37998996 http://dx.doi.org/10.3390/gels9110906 Text en © 2023 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
Tareq, Shahad
Kirkil, Gokhan
Özuğur Uysal, Bengü
Superior Conductivity of Transparent ZnO/MoS(2) Composite Films for Optoelectronic and Solar Cell Applications
title Superior Conductivity of Transparent ZnO/MoS(2) Composite Films for Optoelectronic and Solar Cell Applications
title_full Superior Conductivity of Transparent ZnO/MoS(2) Composite Films for Optoelectronic and Solar Cell Applications
title_fullStr Superior Conductivity of Transparent ZnO/MoS(2) Composite Films for Optoelectronic and Solar Cell Applications
title_full_unstemmed Superior Conductivity of Transparent ZnO/MoS(2) Composite Films for Optoelectronic and Solar Cell Applications
title_short Superior Conductivity of Transparent ZnO/MoS(2) Composite Films for Optoelectronic and Solar Cell Applications
title_sort superior conductivity of transparent zno/mos(2) composite films for optoelectronic and solar cell applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10671341/
https://www.ncbi.nlm.nih.gov/pubmed/37998996
http://dx.doi.org/10.3390/gels9110906
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