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Effect of Graphene Oxide Nano-Sheets on Structural, Morphological and Photocatalytic Activity of BiFeO(3)-Based Nanostructures

Photocatalysts are widely used for the elimination of organic contaminants from waste-water and H(2) evaluation by water-splitting. Herein, the nanohybrids of lanthanum (La) and selenium (Se) co-doped bismuth ferrites with graphene oxide were synthesized. A structural analysis from X-ray diffraction...

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Autores principales: Irfan, Syed, Liang, Guang-xing, Li, Fu, Chen, Yue-xing, Rizwan, Syed, Jin, Jingcheng, Zhuanghao, Zheng, Ping, Fan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6781019/
https://www.ncbi.nlm.nih.gov/pubmed/31546773
http://dx.doi.org/10.3390/nano9091337
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author Irfan, Syed
Liang, Guang-xing
Li, Fu
Chen, Yue-xing
Rizwan, Syed
Jin, Jingcheng
Zhuanghao, Zheng
Ping, Fan
author_facet Irfan, Syed
Liang, Guang-xing
Li, Fu
Chen, Yue-xing
Rizwan, Syed
Jin, Jingcheng
Zhuanghao, Zheng
Ping, Fan
author_sort Irfan, Syed
collection PubMed
description Photocatalysts are widely used for the elimination of organic contaminants from waste-water and H(2) evaluation by water-splitting. Herein, the nanohybrids of lanthanum (La) and selenium (Se) co-doped bismuth ferrites with graphene oxide were synthesized. A structural analysis from X-ray diffraction confirmed the transition of phases from rhombohedral to the distorted orthorhombic. Scanning electron microscopy (SEM) revealed that the graphene nano-sheets homogenously covered La–Se co-doped bismuth ferrites nanoparticles, particularly the (Bi(0.92)La(0.08)Fe(0.50)Se(0.50)O(3)–graphene oxide) LBFSe50-G sample. Moreover, the band-gap nanohybrids of La–Se co-doped bismuth ferrites were estimated from diffuse reflectance spectra (DRS), which showed a variation from 1.84 to 2.09 eV, because the lowering of the band-gap can enhance photocatalytic degradation efficiency. Additionally, the photo-degradation efficiencies increased after the incorporation of graphene nano-sheets onto the La–Se co-doped bismuth ferrite. The maximum degradation efficiency of the LBFSe50-G sample was up to 80%, which may have been due to reduced band-gap and availability of enhanced surface area for incoming photons at the surface of the photocatalyst. Furthermore, photoluminescence spectra confirmed that the graphene oxide provided more electron-capturing sites, which decreased the recombination time of the photo-generated charge carriers. Thus, we can propose that the use of nanohybrids of La–Se co-doped bismuth ferrite with graphene oxide nano-sheets is a promising approach for both water-treatment and water-splitting, with better efficiencies of BiFeO(3).
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spelling pubmed-67810192019-10-30 Effect of Graphene Oxide Nano-Sheets on Structural, Morphological and Photocatalytic Activity of BiFeO(3)-Based Nanostructures Irfan, Syed Liang, Guang-xing Li, Fu Chen, Yue-xing Rizwan, Syed Jin, Jingcheng Zhuanghao, Zheng Ping, Fan Nanomaterials (Basel) Article Photocatalysts are widely used for the elimination of organic contaminants from waste-water and H(2) evaluation by water-splitting. Herein, the nanohybrids of lanthanum (La) and selenium (Se) co-doped bismuth ferrites with graphene oxide were synthesized. A structural analysis from X-ray diffraction confirmed the transition of phases from rhombohedral to the distorted orthorhombic. Scanning electron microscopy (SEM) revealed that the graphene nano-sheets homogenously covered La–Se co-doped bismuth ferrites nanoparticles, particularly the (Bi(0.92)La(0.08)Fe(0.50)Se(0.50)O(3)–graphene oxide) LBFSe50-G sample. Moreover, the band-gap nanohybrids of La–Se co-doped bismuth ferrites were estimated from diffuse reflectance spectra (DRS), which showed a variation from 1.84 to 2.09 eV, because the lowering of the band-gap can enhance photocatalytic degradation efficiency. Additionally, the photo-degradation efficiencies increased after the incorporation of graphene nano-sheets onto the La–Se co-doped bismuth ferrite. The maximum degradation efficiency of the LBFSe50-G sample was up to 80%, which may have been due to reduced band-gap and availability of enhanced surface area for incoming photons at the surface of the photocatalyst. Furthermore, photoluminescence spectra confirmed that the graphene oxide provided more electron-capturing sites, which decreased the recombination time of the photo-generated charge carriers. Thus, we can propose that the use of nanohybrids of La–Se co-doped bismuth ferrite with graphene oxide nano-sheets is a promising approach for both water-treatment and water-splitting, with better efficiencies of BiFeO(3). MDPI 2019-09-19 /pmc/articles/PMC6781019/ /pubmed/31546773 http://dx.doi.org/10.3390/nano9091337 Text en © 2019 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
Irfan, Syed
Liang, Guang-xing
Li, Fu
Chen, Yue-xing
Rizwan, Syed
Jin, Jingcheng
Zhuanghao, Zheng
Ping, Fan
Effect of Graphene Oxide Nano-Sheets on Structural, Morphological and Photocatalytic Activity of BiFeO(3)-Based Nanostructures
title Effect of Graphene Oxide Nano-Sheets on Structural, Morphological and Photocatalytic Activity of BiFeO(3)-Based Nanostructures
title_full Effect of Graphene Oxide Nano-Sheets on Structural, Morphological and Photocatalytic Activity of BiFeO(3)-Based Nanostructures
title_fullStr Effect of Graphene Oxide Nano-Sheets on Structural, Morphological and Photocatalytic Activity of BiFeO(3)-Based Nanostructures
title_full_unstemmed Effect of Graphene Oxide Nano-Sheets on Structural, Morphological and Photocatalytic Activity of BiFeO(3)-Based Nanostructures
title_short Effect of Graphene Oxide Nano-Sheets on Structural, Morphological and Photocatalytic Activity of BiFeO(3)-Based Nanostructures
title_sort effect of graphene oxide nano-sheets on structural, morphological and photocatalytic activity of bifeo(3)-based nanostructures
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6781019/
https://www.ncbi.nlm.nih.gov/pubmed/31546773
http://dx.doi.org/10.3390/nano9091337
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