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Modifying Titania Using the Molten-Salt-Assisted Self-Assembly Process for Cadmium Selenide–Quantum Dot-Sensitized Photoanodes

[Image: see text] Sensitizing titania with semiconducting quantum dots (QDs) is an important field for the development of third-generation photovoltaics. Many methods have been developed to effectively incorporate QDs over the surface of mesoporous titania, assembled from the 20–25 nm titania nanopa...

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Autores principales: Yaman, Muammer Y., Han, Ahmet Selim, Bandara, Jayasundera, Karakaya, Cüneyt, Dag, Ömer
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2017
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6641683/
https://www.ncbi.nlm.nih.gov/pubmed/31457775
http://dx.doi.org/10.1021/acsomega.7b00839
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author Yaman, Muammer Y.
Han, Ahmet Selim
Bandara, Jayasundera
Karakaya, Cüneyt
Dag, Ömer
author_facet Yaman, Muammer Y.
Han, Ahmet Selim
Bandara, Jayasundera
Karakaya, Cüneyt
Dag, Ömer
author_sort Yaman, Muammer Y.
collection PubMed
description [Image: see text] Sensitizing titania with semiconducting quantum dots (QDs) is an important field for the development of third-generation photovoltaics. Many methods have been developed to effectively incorporate QDs over the surface of mesoporous titania, assembled from the 20–25 nm titania nanoparticles. Here, we introduce a molten-salt-assisted self-assembly (MASA) method to fabricate CdSe-modified mesoporous titania photoanodes. A mixture of ethanol, two surfactants (cetyltrimethylammonium bromide and 10-lauryl ether), silica (tetramethyl orthosilicate) or titania source (Ti(OC(4)H(9))(4), acid (HNO(3)), and cadmium nitrate solution was infiltrated into the pores of mesoporous titania (assembled using Degussa 25, P25) and immediately calcined at 450 °C to obtain mesoporous cadmium oxide–silica–titania (meso-CdO–SiO(2)–P25) or cadmium titanate–titania (meso-CdTiO(3)–P25) films. The MASA process is a simple method to smoothly coat or fill the pores of titania with mesoporous CdO–SiO(2) or CdTiO(3) that can be reacted under an H(2)Se atmosphere to convert cadmium species to CdSe at 100 °C. Etching of the silica films with a very dilute hydrogen fluoride solution produces mesoporous CdSe–titania (meso-CdSe–P25) electrodes. The method is flexible to adjust the CdSe/TiO(2) mole ratio over a very broad range in the films. The films were characterized at every stage of the preparation to demonstrate the effectiveness of the method. The electrodes were also tested in a simple two-electrode solar cell to demonstrate the performance of the electrodes that have a power conversion efficiency of 3.35%.
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spelling pubmed-66416832019-08-27 Modifying Titania Using the Molten-Salt-Assisted Self-Assembly Process for Cadmium Selenide–Quantum Dot-Sensitized Photoanodes Yaman, Muammer Y. Han, Ahmet Selim Bandara, Jayasundera Karakaya, Cüneyt Dag, Ömer ACS Omega [Image: see text] Sensitizing titania with semiconducting quantum dots (QDs) is an important field for the development of third-generation photovoltaics. Many methods have been developed to effectively incorporate QDs over the surface of mesoporous titania, assembled from the 20–25 nm titania nanoparticles. Here, we introduce a molten-salt-assisted self-assembly (MASA) method to fabricate CdSe-modified mesoporous titania photoanodes. A mixture of ethanol, two surfactants (cetyltrimethylammonium bromide and 10-lauryl ether), silica (tetramethyl orthosilicate) or titania source (Ti(OC(4)H(9))(4), acid (HNO(3)), and cadmium nitrate solution was infiltrated into the pores of mesoporous titania (assembled using Degussa 25, P25) and immediately calcined at 450 °C to obtain mesoporous cadmium oxide–silica–titania (meso-CdO–SiO(2)–P25) or cadmium titanate–titania (meso-CdTiO(3)–P25) films. The MASA process is a simple method to smoothly coat or fill the pores of titania with mesoporous CdO–SiO(2) or CdTiO(3) that can be reacted under an H(2)Se atmosphere to convert cadmium species to CdSe at 100 °C. Etching of the silica films with a very dilute hydrogen fluoride solution produces mesoporous CdSe–titania (meso-CdSe–P25) electrodes. The method is flexible to adjust the CdSe/TiO(2) mole ratio over a very broad range in the films. The films were characterized at every stage of the preparation to demonstrate the effectiveness of the method. The electrodes were also tested in a simple two-electrode solar cell to demonstrate the performance of the electrodes that have a power conversion efficiency of 3.35%. American Chemical Society 2017-08-28 /pmc/articles/PMC6641683/ /pubmed/31457775 http://dx.doi.org/10.1021/acsomega.7b00839 Text en Copyright © 2017 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Yaman, Muammer Y.
Han, Ahmet Selim
Bandara, Jayasundera
Karakaya, Cüneyt
Dag, Ömer
Modifying Titania Using the Molten-Salt-Assisted Self-Assembly Process for Cadmium Selenide–Quantum Dot-Sensitized Photoanodes
title Modifying Titania Using the Molten-Salt-Assisted Self-Assembly Process for Cadmium Selenide–Quantum Dot-Sensitized Photoanodes
title_full Modifying Titania Using the Molten-Salt-Assisted Self-Assembly Process for Cadmium Selenide–Quantum Dot-Sensitized Photoanodes
title_fullStr Modifying Titania Using the Molten-Salt-Assisted Self-Assembly Process for Cadmium Selenide–Quantum Dot-Sensitized Photoanodes
title_full_unstemmed Modifying Titania Using the Molten-Salt-Assisted Self-Assembly Process for Cadmium Selenide–Quantum Dot-Sensitized Photoanodes
title_short Modifying Titania Using the Molten-Salt-Assisted Self-Assembly Process for Cadmium Selenide–Quantum Dot-Sensitized Photoanodes
title_sort modifying titania using the molten-salt-assisted self-assembly process for cadmium selenide–quantum dot-sensitized photoanodes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6641683/
https://www.ncbi.nlm.nih.gov/pubmed/31457775
http://dx.doi.org/10.1021/acsomega.7b00839
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