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Novel ultralong and photoactive Bi(2)Ti(4)O(11)/TiO(2) heterojunction nanofibers toward efficient textile wastewater treatment

The elimination of dyes from textile wastewater with a lower carbon footprint is highly contingent on the design of green catalysts. Here, we innovatively developed ultralong one-dimensional Bi(2)Ti(4)O(11)/TiO(2) heterojunction nanofibers via electrospinning so as to photocatalytically degrade dyes...

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Detalles Bibliográficos
Autores principales: Juay, Jermyn, Yang, Jia-Cheng E., Bai, Hongwei, Sun, Darren Delai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9450850/
https://www.ncbi.nlm.nih.gov/pubmed/36199309
http://dx.doi.org/10.1039/d2ra02181a
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author Juay, Jermyn
Yang, Jia-Cheng E.
Bai, Hongwei
Sun, Darren Delai
author_facet Juay, Jermyn
Yang, Jia-Cheng E.
Bai, Hongwei
Sun, Darren Delai
author_sort Juay, Jermyn
collection PubMed
description The elimination of dyes from textile wastewater with a lower carbon footprint is highly contingent on the design of green catalysts. Here, we innovatively developed ultralong one-dimensional Bi(2)Ti(4)O(11)/TiO(2) heterojunction nanofibers via electrospinning so as to photocatalytically degrade dyes efficiently and sustainably through the utilisation of renewable solar irradiation. The heterostructured Bi(2)Ti(4)O(11)/TiO(2) nanofibers exhibited desirable activity in the visible light region through the slight shift of the absorption edge to a longer wavelength. The Bi(2)Ti(4)O(11)/TiO(2) nanofibers calcined at 550 °C had a lower optical band gap (3.08 eV) than that of the pure TiO(2) (3.32 eV), as evidenced by their higher photocatalytic degradation kinetics of a model dye (Acid Orange 7) (2.5 times greater than those of pure TiO(2)). The enhanced visible light photocatalytic performance arose from the formation of both the Bi(2)Ti(4)O(11)/TiO(2) heterojunction and the effective separation of photogenerated holes and electrons. The employment of ultralong Bi(2)Ti(4)O(11)/TiO(2) heterojunction nanofibers for dye removal/decolourisation under visible light is an efficient, cost effective and sustainable solution, which will provide significant insights for practical textile wastewater treatment in view of practical engineering applications.
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spelling pubmed-94508502022-10-04 Novel ultralong and photoactive Bi(2)Ti(4)O(11)/TiO(2) heterojunction nanofibers toward efficient textile wastewater treatment Juay, Jermyn Yang, Jia-Cheng E. Bai, Hongwei Sun, Darren Delai RSC Adv Chemistry The elimination of dyes from textile wastewater with a lower carbon footprint is highly contingent on the design of green catalysts. Here, we innovatively developed ultralong one-dimensional Bi(2)Ti(4)O(11)/TiO(2) heterojunction nanofibers via electrospinning so as to photocatalytically degrade dyes efficiently and sustainably through the utilisation of renewable solar irradiation. The heterostructured Bi(2)Ti(4)O(11)/TiO(2) nanofibers exhibited desirable activity in the visible light region through the slight shift of the absorption edge to a longer wavelength. The Bi(2)Ti(4)O(11)/TiO(2) nanofibers calcined at 550 °C had a lower optical band gap (3.08 eV) than that of the pure TiO(2) (3.32 eV), as evidenced by their higher photocatalytic degradation kinetics of a model dye (Acid Orange 7) (2.5 times greater than those of pure TiO(2)). The enhanced visible light photocatalytic performance arose from the formation of both the Bi(2)Ti(4)O(11)/TiO(2) heterojunction and the effective separation of photogenerated holes and electrons. The employment of ultralong Bi(2)Ti(4)O(11)/TiO(2) heterojunction nanofibers for dye removal/decolourisation under visible light is an efficient, cost effective and sustainable solution, which will provide significant insights for practical textile wastewater treatment in view of practical engineering applications. The Royal Society of Chemistry 2022-09-07 /pmc/articles/PMC9450850/ /pubmed/36199309 http://dx.doi.org/10.1039/d2ra02181a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Juay, Jermyn
Yang, Jia-Cheng E.
Bai, Hongwei
Sun, Darren Delai
Novel ultralong and photoactive Bi(2)Ti(4)O(11)/TiO(2) heterojunction nanofibers toward efficient textile wastewater treatment
title Novel ultralong and photoactive Bi(2)Ti(4)O(11)/TiO(2) heterojunction nanofibers toward efficient textile wastewater treatment
title_full Novel ultralong and photoactive Bi(2)Ti(4)O(11)/TiO(2) heterojunction nanofibers toward efficient textile wastewater treatment
title_fullStr Novel ultralong and photoactive Bi(2)Ti(4)O(11)/TiO(2) heterojunction nanofibers toward efficient textile wastewater treatment
title_full_unstemmed Novel ultralong and photoactive Bi(2)Ti(4)O(11)/TiO(2) heterojunction nanofibers toward efficient textile wastewater treatment
title_short Novel ultralong and photoactive Bi(2)Ti(4)O(11)/TiO(2) heterojunction nanofibers toward efficient textile wastewater treatment
title_sort novel ultralong and photoactive bi(2)ti(4)o(11)/tio(2) heterojunction nanofibers toward efficient textile wastewater treatment
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9450850/
https://www.ncbi.nlm.nih.gov/pubmed/36199309
http://dx.doi.org/10.1039/d2ra02181a
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