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Magnetic Photocatalyst BiVO(4)/Mn-Zn ferrite/Reduced Graphene Oxide: Synthesis Strategy and Its Highly Photocatalytic Activity

Magnetic photocatalyst BiVO(4)/Mn-Zn ferrite (Mn(1−x)Zn(x)Fe(2)O(4))/reduced graphene oxide (RGO) was synthesized by a simple calcination and reduction method. The magnetic photocatalyst held high visible light-absorption ability with low band gap energy and wide absorption wavelength range. Electro...

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Autores principales: Xie, Taiping, Li, Hui, Liu, Chenglun, Yang, Jun, Xiao, Tiancun, Xu, Longjun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6027422/
https://www.ncbi.nlm.nih.gov/pubmed/29844293
http://dx.doi.org/10.3390/nano8060380
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author Xie, Taiping
Li, Hui
Liu, Chenglun
Yang, Jun
Xiao, Tiancun
Xu, Longjun
author_facet Xie, Taiping
Li, Hui
Liu, Chenglun
Yang, Jun
Xiao, Tiancun
Xu, Longjun
author_sort Xie, Taiping
collection PubMed
description Magnetic photocatalyst BiVO(4)/Mn-Zn ferrite (Mn(1−x)Zn(x)Fe(2)O(4))/reduced graphene oxide (RGO) was synthesized by a simple calcination and reduction method. The magnetic photocatalyst held high visible light-absorption ability with low band gap energy and wide absorption wavelength range. Electrochemical impedance spectroscopies illustrated good electrical conductivity which indicated low charge-transfer resistance due to incorporation of Mn(1−x)Zn(x)Fe(2)O(4) and RGO. The test of photocatalytic activity showed that the degradation ratio of rhodamine B (RhB) reached 96.0% under visible light irradiation after only 1.5 h reaction. The photocatalytic mechanism for the prepared photocatalyst was explained in detail. Here, the incorporation of RGO enhanced the specific surface area compared with BiVO4/Mn(1−x)Zn(x)Fe(2)O(4).The larger specific surface area provided more active surface sites, more free space to improve the mobility of photo-induced electrons, and further facilitated the effective migration of charge carriers, leading to the remarkable improvement of photocatalytic performance. Meanwhile, RGO was the effective acceptor as well as transporter of photo-generated electron hole pairs. •O(2)(−) was the most active species in the photocatalytic reaction. BiVO(4)/Mn(1−x)Zn(x)Fe(2)O(4)/RGO had quite a wide application in organic contaminants removal or environmental pollution control.
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spelling pubmed-60274222018-07-13 Magnetic Photocatalyst BiVO(4)/Mn-Zn ferrite/Reduced Graphene Oxide: Synthesis Strategy and Its Highly Photocatalytic Activity Xie, Taiping Li, Hui Liu, Chenglun Yang, Jun Xiao, Tiancun Xu, Longjun Nanomaterials (Basel) Article Magnetic photocatalyst BiVO(4)/Mn-Zn ferrite (Mn(1−x)Zn(x)Fe(2)O(4))/reduced graphene oxide (RGO) was synthesized by a simple calcination and reduction method. The magnetic photocatalyst held high visible light-absorption ability with low band gap energy and wide absorption wavelength range. Electrochemical impedance spectroscopies illustrated good electrical conductivity which indicated low charge-transfer resistance due to incorporation of Mn(1−x)Zn(x)Fe(2)O(4) and RGO. The test of photocatalytic activity showed that the degradation ratio of rhodamine B (RhB) reached 96.0% under visible light irradiation after only 1.5 h reaction. The photocatalytic mechanism for the prepared photocatalyst was explained in detail. Here, the incorporation of RGO enhanced the specific surface area compared with BiVO4/Mn(1−x)Zn(x)Fe(2)O(4).The larger specific surface area provided more active surface sites, more free space to improve the mobility of photo-induced electrons, and further facilitated the effective migration of charge carriers, leading to the remarkable improvement of photocatalytic performance. Meanwhile, RGO was the effective acceptor as well as transporter of photo-generated electron hole pairs. •O(2)(−) was the most active species in the photocatalytic reaction. BiVO(4)/Mn(1−x)Zn(x)Fe(2)O(4)/RGO had quite a wide application in organic contaminants removal or environmental pollution control. MDPI 2018-05-29 /pmc/articles/PMC6027422/ /pubmed/29844293 http://dx.doi.org/10.3390/nano8060380 Text en © 2018 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
Xie, Taiping
Li, Hui
Liu, Chenglun
Yang, Jun
Xiao, Tiancun
Xu, Longjun
Magnetic Photocatalyst BiVO(4)/Mn-Zn ferrite/Reduced Graphene Oxide: Synthesis Strategy and Its Highly Photocatalytic Activity
title Magnetic Photocatalyst BiVO(4)/Mn-Zn ferrite/Reduced Graphene Oxide: Synthesis Strategy and Its Highly Photocatalytic Activity
title_full Magnetic Photocatalyst BiVO(4)/Mn-Zn ferrite/Reduced Graphene Oxide: Synthesis Strategy and Its Highly Photocatalytic Activity
title_fullStr Magnetic Photocatalyst BiVO(4)/Mn-Zn ferrite/Reduced Graphene Oxide: Synthesis Strategy and Its Highly Photocatalytic Activity
title_full_unstemmed Magnetic Photocatalyst BiVO(4)/Mn-Zn ferrite/Reduced Graphene Oxide: Synthesis Strategy and Its Highly Photocatalytic Activity
title_short Magnetic Photocatalyst BiVO(4)/Mn-Zn ferrite/Reduced Graphene Oxide: Synthesis Strategy and Its Highly Photocatalytic Activity
title_sort magnetic photocatalyst bivo(4)/mn-zn ferrite/reduced graphene oxide: synthesis strategy and its highly photocatalytic activity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6027422/
https://www.ncbi.nlm.nih.gov/pubmed/29844293
http://dx.doi.org/10.3390/nano8060380
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