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Impact of Al doping on a hydrothermally synthesized β-Ga(2)O(3) nanostructure for photocatalysis applications

Aluminum (Al)-doped beta-phase gallium oxide (β-Ga(2)O(3)) nanostructures with different Al concentrations (0 to 3.2 at%) are synthesized using a hydrothermal method. The single phase of the β-Ga(2)O(3) is maintained without intermediate phases up to Al 3.2 at% doping. As the Al concentration in the...

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Autores principales: Kim, Sunjae, Ryou, Heejoong, Lee, In Gyu, Shin, Myunghun, Cho, Byung Jin, Hwang, Wan Sik
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8695041/
https://www.ncbi.nlm.nih.gov/pubmed/35423267
http://dx.doi.org/10.1039/d1ra00021g
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author Kim, Sunjae
Ryou, Heejoong
Lee, In Gyu
Shin, Myunghun
Cho, Byung Jin
Hwang, Wan Sik
author_facet Kim, Sunjae
Ryou, Heejoong
Lee, In Gyu
Shin, Myunghun
Cho, Byung Jin
Hwang, Wan Sik
author_sort Kim, Sunjae
collection PubMed
description Aluminum (Al)-doped beta-phase gallium oxide (β-Ga(2)O(3)) nanostructures with different Al concentrations (0 to 3.2 at%) are synthesized using a hydrothermal method. The single phase of the β-Ga(2)O(3) is maintained without intermediate phases up to Al 3.2 at% doping. As the Al concentration in the β-Ga(2)O(3) nanostructures increases, the optical bandgap of the β-Ga(2)O(3) increases from 4.69 (Al 0%) to 4.8 (Al 3.2%). The physical, chemical, and optical properties of the Al-doped β-Ga(2)O(3) nanostructures are correlated with photocatalytic activity via the degradation of a methylene blue solution under ultraviolet light (254 nm) irradiation. The photocatalytic activity is enhanced by doping a small amount of substitutional Al atoms (0.6 at%) that presumably create shallow level traps in the band gap. These shallow traps retard the recombination process by separating photogenerated electron–hole pairs. On the other hand, once the Al concentration in the Ga(2)O(3) exceeds 0.6 at%, the crystallographic disorder, oxygen vacancy, and grain boundary-related defects increase as the Al concentration increases. These defect-related energy levels are broadly distributed within the bandgap, which act as carrier recombination centers and thereby degrade the photocatalytic activity. The results of this work provide new opportunities for the synthesis of highly effective β-Ga(2)O(3)-based photocatalysts that can generate hydrogen gas and remove harmful volatile organic compounds.
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spelling pubmed-86950412022-04-13 Impact of Al doping on a hydrothermally synthesized β-Ga(2)O(3) nanostructure for photocatalysis applications Kim, Sunjae Ryou, Heejoong Lee, In Gyu Shin, Myunghun Cho, Byung Jin Hwang, Wan Sik RSC Adv Chemistry Aluminum (Al)-doped beta-phase gallium oxide (β-Ga(2)O(3)) nanostructures with different Al concentrations (0 to 3.2 at%) are synthesized using a hydrothermal method. The single phase of the β-Ga(2)O(3) is maintained without intermediate phases up to Al 3.2 at% doping. As the Al concentration in the β-Ga(2)O(3) nanostructures increases, the optical bandgap of the β-Ga(2)O(3) increases from 4.69 (Al 0%) to 4.8 (Al 3.2%). The physical, chemical, and optical properties of the Al-doped β-Ga(2)O(3) nanostructures are correlated with photocatalytic activity via the degradation of a methylene blue solution under ultraviolet light (254 nm) irradiation. The photocatalytic activity is enhanced by doping a small amount of substitutional Al atoms (0.6 at%) that presumably create shallow level traps in the band gap. These shallow traps retard the recombination process by separating photogenerated electron–hole pairs. On the other hand, once the Al concentration in the Ga(2)O(3) exceeds 0.6 at%, the crystallographic disorder, oxygen vacancy, and grain boundary-related defects increase as the Al concentration increases. These defect-related energy levels are broadly distributed within the bandgap, which act as carrier recombination centers and thereby degrade the photocatalytic activity. The results of this work provide new opportunities for the synthesis of highly effective β-Ga(2)O(3)-based photocatalysts that can generate hydrogen gas and remove harmful volatile organic compounds. The Royal Society of Chemistry 2021-02-12 /pmc/articles/PMC8695041/ /pubmed/35423267 http://dx.doi.org/10.1039/d1ra00021g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Kim, Sunjae
Ryou, Heejoong
Lee, In Gyu
Shin, Myunghun
Cho, Byung Jin
Hwang, Wan Sik
Impact of Al doping on a hydrothermally synthesized β-Ga(2)O(3) nanostructure for photocatalysis applications
title Impact of Al doping on a hydrothermally synthesized β-Ga(2)O(3) nanostructure for photocatalysis applications
title_full Impact of Al doping on a hydrothermally synthesized β-Ga(2)O(3) nanostructure for photocatalysis applications
title_fullStr Impact of Al doping on a hydrothermally synthesized β-Ga(2)O(3) nanostructure for photocatalysis applications
title_full_unstemmed Impact of Al doping on a hydrothermally synthesized β-Ga(2)O(3) nanostructure for photocatalysis applications
title_short Impact of Al doping on a hydrothermally synthesized β-Ga(2)O(3) nanostructure for photocatalysis applications
title_sort impact of al doping on a hydrothermally synthesized β-ga(2)o(3) nanostructure for photocatalysis applications
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8695041/
https://www.ncbi.nlm.nih.gov/pubmed/35423267
http://dx.doi.org/10.1039/d1ra00021g
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