Facile fabrication of Mn2+-doped ZnO photocatalysts by electrospinning

In this study, a high-efficiency photocatalyst was synthesized by Mn2+-doped ZnO nanofibres (NFs) fabricated by facile electrospinning and a following annealing process, in which Mn2+ successes incorporate to ZnO NFs lattice without changing any morphology and crystalline structure of ZnO. The photo...

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Main Authors: Yuting Wang, Xin Hao, Zegao Wang, Mingdong Dong, Lifeng Cui
Format: Article
Language:English
Published: The Royal Society 2020-04-01
Series:Royal Society Open Science
Subjects:
zno
Online Access:https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.191050
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spelling doaj-01fe268fb94f4728be560a7e7b4082d82020-11-25T03:08:41ZengThe Royal SocietyRoyal Society Open Science2054-57032020-04-017410.1098/rsos.191050191050Facile fabrication of Mn2+-doped ZnO photocatalysts by electrospinningYuting WangXin HaoZegao WangMingdong DongLifeng CuiIn this study, a high-efficiency photocatalyst was synthesized by Mn2+-doped ZnO nanofibres (NFs) fabricated by facile electrospinning and a following annealing process, in which Mn2+ successes incorporate to ZnO NFs lattice without changing any morphology and crystalline structure of ZnO. The photodegradation properties of ZnO loading with different concentrations of Mn2+ (5, 10, 15 and 50 at%) were investigated. The 50% MnO–ZnO composite owns excellent active photocatalytic performance (quantum efficiency up to 7.57%) compared to pure ZnO (0.16%) under visible light and can be considered as an efficient visible light photocatalyst material. We systematically analysed its catalytic mechanism and found that the enhancement belongs to the Mn doping effect and the phase junction between MnO and ZnO. The dominant mechanism of Mn doping leads to the presence of impurity levels in the band gap of ZnO, narrowing the optical band gap of ZnO. In addition, doped Mn2+ ions can be used as electron traps that inhibit the recombination process and promote electron–hole pair separation. In summary, this paper provides a convenient method for fabricating highly efficient visible light photocatalysts using controlled annealing.https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.191050znodopingvisible light photocatalystelectrospinningannealing
collection DOAJ
language English
format Article
sources DOAJ
author Yuting Wang
Xin Hao
Zegao Wang
Mingdong Dong
Lifeng Cui
spellingShingle Yuting Wang
Xin Hao
Zegao Wang
Mingdong Dong
Lifeng Cui
Facile fabrication of Mn2+-doped ZnO photocatalysts by electrospinning
Royal Society Open Science
zno
doping
visible light photocatalyst
electrospinning
annealing
author_facet Yuting Wang
Xin Hao
Zegao Wang
Mingdong Dong
Lifeng Cui
author_sort Yuting Wang
title Facile fabrication of Mn2+-doped ZnO photocatalysts by electrospinning
title_short Facile fabrication of Mn2+-doped ZnO photocatalysts by electrospinning
title_full Facile fabrication of Mn2+-doped ZnO photocatalysts by electrospinning
title_fullStr Facile fabrication of Mn2+-doped ZnO photocatalysts by electrospinning
title_full_unstemmed Facile fabrication of Mn2+-doped ZnO photocatalysts by electrospinning
title_sort facile fabrication of mn2+-doped zno photocatalysts by electrospinning
publisher The Royal Society
series Royal Society Open Science
issn 2054-5703
publishDate 2020-04-01
description In this study, a high-efficiency photocatalyst was synthesized by Mn2+-doped ZnO nanofibres (NFs) fabricated by facile electrospinning and a following annealing process, in which Mn2+ successes incorporate to ZnO NFs lattice without changing any morphology and crystalline structure of ZnO. The photodegradation properties of ZnO loading with different concentrations of Mn2+ (5, 10, 15 and 50 at%) were investigated. The 50% MnO–ZnO composite owns excellent active photocatalytic performance (quantum efficiency up to 7.57%) compared to pure ZnO (0.16%) under visible light and can be considered as an efficient visible light photocatalyst material. We systematically analysed its catalytic mechanism and found that the enhancement belongs to the Mn doping effect and the phase junction between MnO and ZnO. The dominant mechanism of Mn doping leads to the presence of impurity levels in the band gap of ZnO, narrowing the optical band gap of ZnO. In addition, doped Mn2+ ions can be used as electron traps that inhibit the recombination process and promote electron–hole pair separation. In summary, this paper provides a convenient method for fabricating highly efficient visible light photocatalysts using controlled annealing.
topic zno
doping
visible light photocatalyst
electrospinning
annealing
url https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.191050
work_keys_str_mv AT yutingwang facilefabricationofmn2dopedznophotocatalystsbyelectrospinning
AT xinhao facilefabricationofmn2dopedznophotocatalystsbyelectrospinning
AT zegaowang facilefabricationofmn2dopedznophotocatalystsbyelectrospinning
AT mingdongdong facilefabricationofmn2dopedznophotocatalystsbyelectrospinning
AT lifengcui facilefabricationofmn2dopedznophotocatalystsbyelectrospinning
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