Cargando…

Colloidal Synthesis and Characterization of Molybdenum Chalcogenide Quantum Dots Using a Two-Source Precursor Pathway for Photovoltaic Applications

The drawbacks of utilizing nonrenewable energy have quickened innovative work on practical sustainable power sources (photovoltaics) because of their provision of a better-preserved decent environment which is free from natural contamination and commotion. Herein, the synthesis, characterization, an...

Descripción completa

Detalles Bibliográficos
Autores principales: Chikukwa, Evernice, Meyer, Edson, Mbese, Johannes, Zingwe, Nyengerai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8307795/
https://www.ncbi.nlm.nih.gov/pubmed/34299466
http://dx.doi.org/10.3390/molecules26144191
_version_ 1783728131002073088
author Chikukwa, Evernice
Meyer, Edson
Mbese, Johannes
Zingwe, Nyengerai
author_facet Chikukwa, Evernice
Meyer, Edson
Mbese, Johannes
Zingwe, Nyengerai
author_sort Chikukwa, Evernice
collection PubMed
description The drawbacks of utilizing nonrenewable energy have quickened innovative work on practical sustainable power sources (photovoltaics) because of their provision of a better-preserved decent environment which is free from natural contamination and commotion. Herein, the synthesis, characterization, and application of Mo chalcogenide nanoparticles (NP) as alternative sources in the absorber layer of QDSSCs is discussed. The successful synthesis of the NP was confirmed as the results from the diffractive peaks obtained from XRD which were positive and agreed in comparison with the standard. The diffractive peaks were shown in the planes (100), (002), (100), and (105) for the MoS(2) nanoparticles; (002), (100), (103), and (110) for the MoSe(2) nanoparticles; and (0002), (0004), (103), as well as (0006) for the MoTe(2) nanoparticles. MoSe(2) presented the smallest size of the nanoparticles, followed by MoTe(2) and, lastly, by MoS(2). These results agreed with the results obtained using SEM analysis. For the optical properties of the nanoparticles, UV–Vis and PL were used. The shift of the peaks from the red shift (600 nm) to the blue shift (270–275 nm and 287–289 nm (UV–Vis)) confirmed that the nanoparticles were quantum-confined. The application of the MoX(2) NPs in QDSSCs was performed, with MoSe(2) presenting the greatest PCE of 7.86%, followed by MoTe(2) (6.93%) and, lastly, by MoS(2), with the PCE of 6.05%.
format Online
Article
Text
id pubmed-8307795
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-83077952021-07-25 Colloidal Synthesis and Characterization of Molybdenum Chalcogenide Quantum Dots Using a Two-Source Precursor Pathway for Photovoltaic Applications Chikukwa, Evernice Meyer, Edson Mbese, Johannes Zingwe, Nyengerai Molecules Article The drawbacks of utilizing nonrenewable energy have quickened innovative work on practical sustainable power sources (photovoltaics) because of their provision of a better-preserved decent environment which is free from natural contamination and commotion. Herein, the synthesis, characterization, and application of Mo chalcogenide nanoparticles (NP) as alternative sources in the absorber layer of QDSSCs is discussed. The successful synthesis of the NP was confirmed as the results from the diffractive peaks obtained from XRD which were positive and agreed in comparison with the standard. The diffractive peaks were shown in the planes (100), (002), (100), and (105) for the MoS(2) nanoparticles; (002), (100), (103), and (110) for the MoSe(2) nanoparticles; and (0002), (0004), (103), as well as (0006) for the MoTe(2) nanoparticles. MoSe(2) presented the smallest size of the nanoparticles, followed by MoTe(2) and, lastly, by MoS(2). These results agreed with the results obtained using SEM analysis. For the optical properties of the nanoparticles, UV–Vis and PL were used. The shift of the peaks from the red shift (600 nm) to the blue shift (270–275 nm and 287–289 nm (UV–Vis)) confirmed that the nanoparticles were quantum-confined. The application of the MoX(2) NPs in QDSSCs was performed, with MoSe(2) presenting the greatest PCE of 7.86%, followed by MoTe(2) (6.93%) and, lastly, by MoS(2), with the PCE of 6.05%. MDPI 2021-07-09 /pmc/articles/PMC8307795/ /pubmed/34299466 http://dx.doi.org/10.3390/molecules26144191 Text en © 2021 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
Chikukwa, Evernice
Meyer, Edson
Mbese, Johannes
Zingwe, Nyengerai
Colloidal Synthesis and Characterization of Molybdenum Chalcogenide Quantum Dots Using a Two-Source Precursor Pathway for Photovoltaic Applications
title Colloidal Synthesis and Characterization of Molybdenum Chalcogenide Quantum Dots Using a Two-Source Precursor Pathway for Photovoltaic Applications
title_full Colloidal Synthesis and Characterization of Molybdenum Chalcogenide Quantum Dots Using a Two-Source Precursor Pathway for Photovoltaic Applications
title_fullStr Colloidal Synthesis and Characterization of Molybdenum Chalcogenide Quantum Dots Using a Two-Source Precursor Pathway for Photovoltaic Applications
title_full_unstemmed Colloidal Synthesis and Characterization of Molybdenum Chalcogenide Quantum Dots Using a Two-Source Precursor Pathway for Photovoltaic Applications
title_short Colloidal Synthesis and Characterization of Molybdenum Chalcogenide Quantum Dots Using a Two-Source Precursor Pathway for Photovoltaic Applications
title_sort colloidal synthesis and characterization of molybdenum chalcogenide quantum dots using a two-source precursor pathway for photovoltaic applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8307795/
https://www.ncbi.nlm.nih.gov/pubmed/34299466
http://dx.doi.org/10.3390/molecules26144191
work_keys_str_mv AT chikukwaevernice colloidalsynthesisandcharacterizationofmolybdenumchalcogenidequantumdotsusingatwosourceprecursorpathwayforphotovoltaicapplications
AT meyeredson colloidalsynthesisandcharacterizationofmolybdenumchalcogenidequantumdotsusingatwosourceprecursorpathwayforphotovoltaicapplications
AT mbesejohannes colloidalsynthesisandcharacterizationofmolybdenumchalcogenidequantumdotsusingatwosourceprecursorpathwayforphotovoltaicapplications
AT zingwenyengerai colloidalsynthesisandcharacterizationofmolybdenumchalcogenidequantumdotsusingatwosourceprecursorpathwayforphotovoltaicapplications