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Lattice Defects Engineering in W-, Zr-doped BiVO(4) by Flame Spray Pyrolysis: Enhancing Photocatalytic O(2) Evolution

A flame spray pyrolysis (FSP) method has been developed, for controlled doping of BiVO(4) nanoparticles with W and Zr in tandem with the oxygen vacancies (Vo) of the BiVO(4) lattice. Based on XPS and Raman data, we show that the nanolattice of W-BiVO(4) and Zr-BiO(4) can be controlled to achieve opt...

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Autores principales: Stathi, Panagiota, Solakidou, Maria, Deligiannakis, Yiannis
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7920441/
https://www.ncbi.nlm.nih.gov/pubmed/33669461
http://dx.doi.org/10.3390/nano11020501
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author Stathi, Panagiota
Solakidou, Maria
Deligiannakis, Yiannis
author_facet Stathi, Panagiota
Solakidou, Maria
Deligiannakis, Yiannis
author_sort Stathi, Panagiota
collection PubMed
description A flame spray pyrolysis (FSP) method has been developed, for controlled doping of BiVO(4) nanoparticles with W and Zr in tandem with the oxygen vacancies (Vo) of the BiVO(4) lattice. Based on XPS and Raman data, we show that the nanolattice of W-BiVO(4) and Zr-BiO(4) can be controlled to achieve optimal O(2) evolution from H(2)O photocatalysis. A synergistic effect is found between the W- and Zr-doping level in correlation with the Vo-concentration. FSP- made W-BiVO(4) show optimal photocatalytic O(2)-production from H(2)O, up to 1020 μmol/(g × h) for 5%W-BiVO(4), while the best performing Zr-doped achieved 970 μmol/(g × h) for 5%Zr-BiVO(4). Higher W-or Zr-doping resulted in deterioration in photocatalytic O(2)-production from H(2)O. Thus, engineering of FSP-made BiVO(4) nanoparticles by precise control of the lattice and doping-level, allows significant enhancement of the photocatalytic O(2)-evolution efficiency. Technology-wise, the present work demonstrates that flame spray pyrolysis as an inherently scalable technology, allows precise control of the BiVO(4) nanolattice, to achieve significant improvement of its photocatalytic efficiency.
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spelling pubmed-79204412021-03-02 Lattice Defects Engineering in W-, Zr-doped BiVO(4) by Flame Spray Pyrolysis: Enhancing Photocatalytic O(2) Evolution Stathi, Panagiota Solakidou, Maria Deligiannakis, Yiannis Nanomaterials (Basel) Article A flame spray pyrolysis (FSP) method has been developed, for controlled doping of BiVO(4) nanoparticles with W and Zr in tandem with the oxygen vacancies (Vo) of the BiVO(4) lattice. Based on XPS and Raman data, we show that the nanolattice of W-BiVO(4) and Zr-BiO(4) can be controlled to achieve optimal O(2) evolution from H(2)O photocatalysis. A synergistic effect is found between the W- and Zr-doping level in correlation with the Vo-concentration. FSP- made W-BiVO(4) show optimal photocatalytic O(2)-production from H(2)O, up to 1020 μmol/(g × h) for 5%W-BiVO(4), while the best performing Zr-doped achieved 970 μmol/(g × h) for 5%Zr-BiVO(4). Higher W-or Zr-doping resulted in deterioration in photocatalytic O(2)-production from H(2)O. Thus, engineering of FSP-made BiVO(4) nanoparticles by precise control of the lattice and doping-level, allows significant enhancement of the photocatalytic O(2)-evolution efficiency. Technology-wise, the present work demonstrates that flame spray pyrolysis as an inherently scalable technology, allows precise control of the BiVO(4) nanolattice, to achieve significant improvement of its photocatalytic efficiency. MDPI 2021-02-16 /pmc/articles/PMC7920441/ /pubmed/33669461 http://dx.doi.org/10.3390/nano11020501 Text en © 2021 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Stathi, Panagiota
Solakidou, Maria
Deligiannakis, Yiannis
Lattice Defects Engineering in W-, Zr-doped BiVO(4) by Flame Spray Pyrolysis: Enhancing Photocatalytic O(2) Evolution
title Lattice Defects Engineering in W-, Zr-doped BiVO(4) by Flame Spray Pyrolysis: Enhancing Photocatalytic O(2) Evolution
title_full Lattice Defects Engineering in W-, Zr-doped BiVO(4) by Flame Spray Pyrolysis: Enhancing Photocatalytic O(2) Evolution
title_fullStr Lattice Defects Engineering in W-, Zr-doped BiVO(4) by Flame Spray Pyrolysis: Enhancing Photocatalytic O(2) Evolution
title_full_unstemmed Lattice Defects Engineering in W-, Zr-doped BiVO(4) by Flame Spray Pyrolysis: Enhancing Photocatalytic O(2) Evolution
title_short Lattice Defects Engineering in W-, Zr-doped BiVO(4) by Flame Spray Pyrolysis: Enhancing Photocatalytic O(2) Evolution
title_sort lattice defects engineering in w-, zr-doped bivo(4) by flame spray pyrolysis: enhancing photocatalytic o(2) evolution
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7920441/
https://www.ncbi.nlm.nih.gov/pubmed/33669461
http://dx.doi.org/10.3390/nano11020501
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