Electronic structure, optical properties, and photocatalytic activities of LaFeO3–NaTaO3 solid solution

A solid solution photocatalyst, Na1–xLaxFe1–xTaxO3 (x up to 0.06), was prepared by the conventional solid-state method. The photophysical properties of the samples were studied by various experimental techniques and the electronic structures were investigated by using screened hybrid density functio...

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Main Authors: Kanhere, Pushkar D., Nisar, Jawad, Tang, Yuxin, Pathak, Biswarup, Ahuja, Rajeev, Zheng, Jianwei, Chen, Zhong
Other Authors: School of Materials Science & Engineering
Format: Article
Language:English
Published: 2013
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Online Access:https://hdl.handle.net/10356/99122
http://hdl.handle.net/10220/17137
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-991222020-06-01T10:01:57Z Electronic structure, optical properties, and photocatalytic activities of LaFeO3–NaTaO3 solid solution Kanhere, Pushkar D. Nisar, Jawad Tang, Yuxin Pathak, Biswarup Ahuja, Rajeev Zheng, Jianwei Chen, Zhong School of Materials Science & Engineering DRNTU::Engineering::Materials::Material testing and characterization A solid solution photocatalyst, Na1–xLaxFe1–xTaxO3 (x up to 0.06), was prepared by the conventional solid-state method. The photophysical properties of the samples were studied by various experimental techniques and the electronic structures were investigated by using screened hybrid density functional (HSE06) calculations. The solid solution photocatalyst showed absorption of visible light extending up to 450 nm. Upon loading of platinum nanoparticles cocatalyst, the photocatalytic hydrogen evolution of 0.81 μ·mol·h–1·g–1 was obtained for 2% doping of LaFeO3 in NaTaO3, under visible radiation (λ > 390 nm; 20% methanol solution). The photocatalytic properties of the solid solution were found to be better than Fe doped NaTaO3 compounds on account of the suitable band structure. The electronic structure analysis revealed that, in the case of Fe doping at the Ta site, unoccupied electronic states in between the band gap appear that are responsible for the visible-light absorption. However, in the case of La and Fe codoping (passivated doping) the mid-gap electronic states are completely filled, which makes the band structure suitable for the visible-light photocatalysis. The present solid solution of perovskites (LaFeO3 and NaTaO3) sheds light on the interesting photophysical properties and photocatalytic activities which could be beneficial for the photocatalysts derived from these compounds. 2013-10-31T07:00:42Z 2019-12-06T20:03:37Z 2013-10-31T07:00:42Z 2019-12-06T20:03:37Z 2012 2012 Journal Article Kanhere, P., Nisar, J., Tang, Y., Pathak, B., Ahuja, R., Zheng, J., et al. (2012). Electronic structure, optical properties, and photocatalytic activities of LaFeO3–NaTaO3 solid solution. The journal of physical chemistry C, 116(43), 22767-22773. https://hdl.handle.net/10356/99122 http://hdl.handle.net/10220/17137 10.1021/jp307857h en The journal of physical chemistry C
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
topic DRNTU::Engineering::Materials::Material testing and characterization
spellingShingle DRNTU::Engineering::Materials::Material testing and characterization
Kanhere, Pushkar D.
Nisar, Jawad
Tang, Yuxin
Pathak, Biswarup
Ahuja, Rajeev
Zheng, Jianwei
Chen, Zhong
Electronic structure, optical properties, and photocatalytic activities of LaFeO3–NaTaO3 solid solution
description A solid solution photocatalyst, Na1–xLaxFe1–xTaxO3 (x up to 0.06), was prepared by the conventional solid-state method. The photophysical properties of the samples were studied by various experimental techniques and the electronic structures were investigated by using screened hybrid density functional (HSE06) calculations. The solid solution photocatalyst showed absorption of visible light extending up to 450 nm. Upon loading of platinum nanoparticles cocatalyst, the photocatalytic hydrogen evolution of 0.81 μ·mol·h–1·g–1 was obtained for 2% doping of LaFeO3 in NaTaO3, under visible radiation (λ > 390 nm; 20% methanol solution). The photocatalytic properties of the solid solution were found to be better than Fe doped NaTaO3 compounds on account of the suitable band structure. The electronic structure analysis revealed that, in the case of Fe doping at the Ta site, unoccupied electronic states in between the band gap appear that are responsible for the visible-light absorption. However, in the case of La and Fe codoping (passivated doping) the mid-gap electronic states are completely filled, which makes the band structure suitable for the visible-light photocatalysis. The present solid solution of perovskites (LaFeO3 and NaTaO3) sheds light on the interesting photophysical properties and photocatalytic activities which could be beneficial for the photocatalysts derived from these compounds.
author2 School of Materials Science & Engineering
author_facet School of Materials Science & Engineering
Kanhere, Pushkar D.
Nisar, Jawad
Tang, Yuxin
Pathak, Biswarup
Ahuja, Rajeev
Zheng, Jianwei
Chen, Zhong
format Article
author Kanhere, Pushkar D.
Nisar, Jawad
Tang, Yuxin
Pathak, Biswarup
Ahuja, Rajeev
Zheng, Jianwei
Chen, Zhong
author_sort Kanhere, Pushkar D.
title Electronic structure, optical properties, and photocatalytic activities of LaFeO3–NaTaO3 solid solution
title_short Electronic structure, optical properties, and photocatalytic activities of LaFeO3–NaTaO3 solid solution
title_full Electronic structure, optical properties, and photocatalytic activities of LaFeO3–NaTaO3 solid solution
title_fullStr Electronic structure, optical properties, and photocatalytic activities of LaFeO3–NaTaO3 solid solution
title_full_unstemmed Electronic structure, optical properties, and photocatalytic activities of LaFeO3–NaTaO3 solid solution
title_sort electronic structure, optical properties, and photocatalytic activities of lafeo3–natao3 solid solution
publishDate 2013
url https://hdl.handle.net/10356/99122
http://hdl.handle.net/10220/17137
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