Challenges in Determining the Location of Dopants, to Study the Influence of Metal Doping on the Photocatalytic Activities of ZnO Nanopowders
Impurity doping is one of the common approaches to enhance the photoactivity of semiconductor nanomaterials by increasing photon-capture efficiency in the visible light range. However, many studies on the doping effects have produced inconclusive and conflicting results. There are some misleading as...
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doaj-119b6eb3e7614185b68259be6dc404a02020-11-24T21:49:07ZengMDPI AGNanomaterials2079-49912019-03-019348110.3390/nano9030481nano9030481Challenges in Determining the Location of Dopants, to Study the Influence of Metal Doping on the Photocatalytic Activities of ZnO NanopowdersTakuya Tsuzuki0Rongliang He1Aaron Dodd2Martin Saunders3Research School of Electric, Energy and Materials Engineering, College of Engineering and Computer Science, Australian National University, Canberra 0200, AustraliaInstitute for Frontier Materials, Deakin University, Waurn Ponds 3216, AustraliaCentre for Microscopy, Characterization and Analysis, The University of Western Australia, 35 Stirling Highway, Perth 6009, AustraliaCentre for Microscopy, Characterization and Analysis, The University of Western Australia, 35 Stirling Highway, Perth 6009, AustraliaImpurity doping is one of the common approaches to enhance the photoactivity of semiconductor nanomaterials by increasing photon-capture efficiency in the visible light range. However, many studies on the doping effects have produced inconclusive and conflicting results. There are some misleading assumptions and errors that are frequently made in the data interpretation, which can lead to inconsistent results about the doping effects on photocatalysis. One of them is the determination of the location of dopants. Even using advanced analytical techniques, it is still challenging to distinguish between bulk modification and surface modification. The paper provides a case study of transition-metal-doped ZnO nanoparticles, whereby demonstrating common pitfalls in the interpretation of the results of widely-used analytical methods in detail, and discussing the importance of using a combination of many characterization techniques to correctly determine the location of added impurities, for elucidating the influence of metal doping on the photocatalytic activities of semiconductor nanoparticles.https://www.mdpi.com/2079-4991/9/3/481nanoparticlesphotocatalysisdopingZnO: transition metal |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Takuya Tsuzuki Rongliang He Aaron Dodd Martin Saunders |
spellingShingle |
Takuya Tsuzuki Rongliang He Aaron Dodd Martin Saunders Challenges in Determining the Location of Dopants, to Study the Influence of Metal Doping on the Photocatalytic Activities of ZnO Nanopowders Nanomaterials nanoparticles photocatalysis doping ZnO: transition metal |
author_facet |
Takuya Tsuzuki Rongliang He Aaron Dodd Martin Saunders |
author_sort |
Takuya Tsuzuki |
title |
Challenges in Determining the Location of Dopants, to Study the Influence of Metal Doping on the Photocatalytic Activities of ZnO Nanopowders |
title_short |
Challenges in Determining the Location of Dopants, to Study the Influence of Metal Doping on the Photocatalytic Activities of ZnO Nanopowders |
title_full |
Challenges in Determining the Location of Dopants, to Study the Influence of Metal Doping on the Photocatalytic Activities of ZnO Nanopowders |
title_fullStr |
Challenges in Determining the Location of Dopants, to Study the Influence of Metal Doping on the Photocatalytic Activities of ZnO Nanopowders |
title_full_unstemmed |
Challenges in Determining the Location of Dopants, to Study the Influence of Metal Doping on the Photocatalytic Activities of ZnO Nanopowders |
title_sort |
challenges in determining the location of dopants, to study the influence of metal doping on the photocatalytic activities of zno nanopowders |
publisher |
MDPI AG |
series |
Nanomaterials |
issn |
2079-4991 |
publishDate |
2019-03-01 |
description |
Impurity doping is one of the common approaches to enhance the photoactivity of semiconductor nanomaterials by increasing photon-capture efficiency in the visible light range. However, many studies on the doping effects have produced inconclusive and conflicting results. There are some misleading assumptions and errors that are frequently made in the data interpretation, which can lead to inconsistent results about the doping effects on photocatalysis. One of them is the determination of the location of dopants. Even using advanced analytical techniques, it is still challenging to distinguish between bulk modification and surface modification. The paper provides a case study of transition-metal-doped ZnO nanoparticles, whereby demonstrating common pitfalls in the interpretation of the results of widely-used analytical methods in detail, and discussing the importance of using a combination of many characterization techniques to correctly determine the location of added impurities, for elucidating the influence of metal doping on the photocatalytic activities of semiconductor nanoparticles. |
topic |
nanoparticles photocatalysis doping ZnO: transition metal |
url |
https://www.mdpi.com/2079-4991/9/3/481 |
work_keys_str_mv |
AT takuyatsuzuki challengesindeterminingthelocationofdopantstostudytheinfluenceofmetaldopingonthephotocatalyticactivitiesofznonanopowders AT ronglianghe challengesindeterminingthelocationofdopantstostudytheinfluenceofmetaldopingonthephotocatalyticactivitiesofznonanopowders AT aarondodd challengesindeterminingthelocationofdopantstostudytheinfluenceofmetaldopingonthephotocatalyticactivitiesofznonanopowders AT martinsaunders challengesindeterminingthelocationofdopantstostudytheinfluenceofmetaldopingonthephotocatalyticactivitiesofznonanopowders |
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1725889469362470912 |