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MoO(3), TiO(2), and MoTiO(5) based oxide semiconductor for photovoltaic applications

Topographic essential synthesis of nanomaterials by adjusting easy preparatory factors is an effective way to improve a variety of nanostructured materials. The SILAR technique is used to evaluate the manufacturing samples of MoO(3), TiO(2), and MoTiO(5) nanostructures. These nanostructures of MoO(3...

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Autor principal: BAYRAKÇEKEN NİŞANCI, Fatma
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Scientific and Technological Research Council of Turkey (TUBITAK) 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10390127/
https://www.ncbi.nlm.nih.gov/pubmed/37529748
http://dx.doi.org/10.55730/1300-0527.3470
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author BAYRAKÇEKEN NİŞANCI, Fatma
author_facet BAYRAKÇEKEN NİŞANCI, Fatma
author_sort BAYRAKÇEKEN NİŞANCI, Fatma
collection PubMed
description Topographic essential synthesis of nanomaterials by adjusting easy preparatory factors is an effective way to improve a variety of nanostructured materials. The SILAR technique is used to evaluate the manufacturing samples of MoO(3), TiO(2), and MoTiO(5) nanostructures. These nanostructures of MoO(3), TiO(2), and MoTiO(5) are used as electrode materials in photovoltaic systems. The link between photoelectrochemical characteristics and MoO(3), TiO(2), and MoTiO(5) nanostructures is studied in depth. The photoelectrochemical characteristics of MoO(3), TiO(2), and MoTiO(5) nanostructures are discovered to be highly dependent. At a 5mV/s scan rate, the photocurrent of MoO(3), TiO(2), and MoTiO(5) electrodes surged fast when sunlight was turned on, reaching values of 1.03 mA cm(−2), 1.68 mA cm(−2), and 14.20 mA cm(−2), respectively. As soon as the solar illumination was turned off, the photocurrent value dropped to zero. Photocurrent transitions showed a quick, homogeneous photocurrent counterpart; this suggested that charge transfer in these ingredients is speedy and possibly related to the crystal buildings of MoO(3), TiO(2,) and MoTiO(5). MoTiO(5) nano-belt and nano-disc thin films have typical uses in the photoelectrochemical sector because they have the best photoresponse and stability.
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spelling pubmed-103901272023-08-01 MoO(3), TiO(2), and MoTiO(5) based oxide semiconductor for photovoltaic applications BAYRAKÇEKEN NİŞANCI, Fatma Turk J Chem Research Article Topographic essential synthesis of nanomaterials by adjusting easy preparatory factors is an effective way to improve a variety of nanostructured materials. The SILAR technique is used to evaluate the manufacturing samples of MoO(3), TiO(2), and MoTiO(5) nanostructures. These nanostructures of MoO(3), TiO(2), and MoTiO(5) are used as electrode materials in photovoltaic systems. The link between photoelectrochemical characteristics and MoO(3), TiO(2), and MoTiO(5) nanostructures is studied in depth. The photoelectrochemical characteristics of MoO(3), TiO(2), and MoTiO(5) nanostructures are discovered to be highly dependent. At a 5mV/s scan rate, the photocurrent of MoO(3), TiO(2), and MoTiO(5) electrodes surged fast when sunlight was turned on, reaching values of 1.03 mA cm(−2), 1.68 mA cm(−2), and 14.20 mA cm(−2), respectively. As soon as the solar illumination was turned off, the photocurrent value dropped to zero. Photocurrent transitions showed a quick, homogeneous photocurrent counterpart; this suggested that charge transfer in these ingredients is speedy and possibly related to the crystal buildings of MoO(3), TiO(2,) and MoTiO(5). MoTiO(5) nano-belt and nano-disc thin films have typical uses in the photoelectrochemical sector because they have the best photoresponse and stability. Scientific and Technological Research Council of Turkey (TUBITAK) 2022-08-02 /pmc/articles/PMC10390127/ /pubmed/37529748 http://dx.doi.org/10.55730/1300-0527.3470 Text en © TÜBİTAK https://creativecommons.org/licenses/by/4.0/This work is licensed under a Creative Commons Attribution 4.0 International License.
spellingShingle Research Article
BAYRAKÇEKEN NİŞANCI, Fatma
MoO(3), TiO(2), and MoTiO(5) based oxide semiconductor for photovoltaic applications
title MoO(3), TiO(2), and MoTiO(5) based oxide semiconductor for photovoltaic applications
title_full MoO(3), TiO(2), and MoTiO(5) based oxide semiconductor for photovoltaic applications
title_fullStr MoO(3), TiO(2), and MoTiO(5) based oxide semiconductor for photovoltaic applications
title_full_unstemmed MoO(3), TiO(2), and MoTiO(5) based oxide semiconductor for photovoltaic applications
title_short MoO(3), TiO(2), and MoTiO(5) based oxide semiconductor for photovoltaic applications
title_sort moo(3), tio(2), and motio(5) based oxide semiconductor for photovoltaic applications
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10390127/
https://www.ncbi.nlm.nih.gov/pubmed/37529748
http://dx.doi.org/10.55730/1300-0527.3470
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