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Rationally designed La and Se co-doped bismuth ferrites with controlled bandgap for visible light photocatalysis

Development of efficient visible light photocatalysts for water purification and hydrogen production by water splitting has been quite challenging. The activities of visible light photocatalysts are generally controlled by the extent of absorption of incident light, band gap, exposure of catalyst su...

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Autores principales: Umar, M., Mahmood, Nasir, Awan, Saif Ullah, Fatima, Sabeen, Mahmood, Asif, Rizwan, Syed
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9064475/
https://www.ncbi.nlm.nih.gov/pubmed/35519847
http://dx.doi.org/10.1039/c9ra03064f
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author Umar, M.
Mahmood, Nasir
Awan, Saif Ullah
Fatima, Sabeen
Mahmood, Asif
Rizwan, Syed
author_facet Umar, M.
Mahmood, Nasir
Awan, Saif Ullah
Fatima, Sabeen
Mahmood, Asif
Rizwan, Syed
author_sort Umar, M.
collection PubMed
description Development of efficient visible light photocatalysts for water purification and hydrogen production by water splitting has been quite challenging. The activities of visible light photocatalysts are generally controlled by the extent of absorption of incident light, band gap, exposure of catalyst surface to incident light and adsorbing species. Here, we have synthesized nanostructured, La and Se co-doped bismuth ferrite (BLFSO) nanosheets using double solvent sol–gel and co-precipitation methods. Structural analysis revealed that the La and Se co-doped BFO i.e. Bi(0.92)La(0.08)Fe(1−x)Se(x)O(3) (BLFSO) transformed from perovskite rhombohedral to orthorhombic phase. As a result of co-doping and phase transition, a significant decrease in the band gap from 2.04 eV to 1.76 eV was observed for BLFSO-50% (having Se doping of 50%) which requires less energy during transfer of electrons from the valence to the conduction band and ultimately enhances the photocatalytic activity. Moreover, upon increase in Se doping, the BLFSO morphology gradually changed from particles to nanosheets. Among various products, BLFSO-50% exhibited the highest photocatalytic activities under visible light owing to homogenous phase distribution, regular sheet type morphology and larger contact with dye containing solutions. In summary, La, Se co-doping is an effective approach to tune the electronic structure of photocatalysts for visible light photocatalysis.
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spelling pubmed-90644752022-05-04 Rationally designed La and Se co-doped bismuth ferrites with controlled bandgap for visible light photocatalysis Umar, M. Mahmood, Nasir Awan, Saif Ullah Fatima, Sabeen Mahmood, Asif Rizwan, Syed RSC Adv Chemistry Development of efficient visible light photocatalysts for water purification and hydrogen production by water splitting has been quite challenging. The activities of visible light photocatalysts are generally controlled by the extent of absorption of incident light, band gap, exposure of catalyst surface to incident light and adsorbing species. Here, we have synthesized nanostructured, La and Se co-doped bismuth ferrite (BLFSO) nanosheets using double solvent sol–gel and co-precipitation methods. Structural analysis revealed that the La and Se co-doped BFO i.e. Bi(0.92)La(0.08)Fe(1−x)Se(x)O(3) (BLFSO) transformed from perovskite rhombohedral to orthorhombic phase. As a result of co-doping and phase transition, a significant decrease in the band gap from 2.04 eV to 1.76 eV was observed for BLFSO-50% (having Se doping of 50%) which requires less energy during transfer of electrons from the valence to the conduction band and ultimately enhances the photocatalytic activity. Moreover, upon increase in Se doping, the BLFSO morphology gradually changed from particles to nanosheets. Among various products, BLFSO-50% exhibited the highest photocatalytic activities under visible light owing to homogenous phase distribution, regular sheet type morphology and larger contact with dye containing solutions. In summary, La, Se co-doping is an effective approach to tune the electronic structure of photocatalysts for visible light photocatalysis. The Royal Society of Chemistry 2019-05-31 /pmc/articles/PMC9064475/ /pubmed/35519847 http://dx.doi.org/10.1039/c9ra03064f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Umar, M.
Mahmood, Nasir
Awan, Saif Ullah
Fatima, Sabeen
Mahmood, Asif
Rizwan, Syed
Rationally designed La and Se co-doped bismuth ferrites with controlled bandgap for visible light photocatalysis
title Rationally designed La and Se co-doped bismuth ferrites with controlled bandgap for visible light photocatalysis
title_full Rationally designed La and Se co-doped bismuth ferrites with controlled bandgap for visible light photocatalysis
title_fullStr Rationally designed La and Se co-doped bismuth ferrites with controlled bandgap for visible light photocatalysis
title_full_unstemmed Rationally designed La and Se co-doped bismuth ferrites with controlled bandgap for visible light photocatalysis
title_short Rationally designed La and Se co-doped bismuth ferrites with controlled bandgap for visible light photocatalysis
title_sort rationally designed la and se co-doped bismuth ferrites with controlled bandgap for visible light photocatalysis
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9064475/
https://www.ncbi.nlm.nih.gov/pubmed/35519847
http://dx.doi.org/10.1039/c9ra03064f
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