dc.contributor.author |
Opoku, F
|
|
dc.contributor.author |
Govender, Krishna
|
|
dc.contributor.author |
Van Sittert, CGCE
|
|
dc.contributor.author |
Govender, PP
|
|
dc.date.accessioned |
2017-09-20T09:51:49Z |
|
dc.date.available |
2017-09-20T09:51:49Z |
|
dc.date.issued |
2017-07 |
|
dc.identifier.citation |
Opoku, F., Govender, K.K., Van Sittert, C.G.C.E. et al. 2017. Recent progress in the development of semiconductor-based photocatalyst materials for applications in photocatalytic water splitting and degradation of pollutants. Advanced Sustainable Systems, vol. 1(7): DOI: 10.1002/adsu.201700006 |
en_US |
dc.identifier.issn |
2366-7486 |
|
dc.identifier.uri |
DOI: 10.1002/adsu.201700006
|
|
dc.identifier.uri |
http://onlinelibrary.wiley.com/doi/10.1002/adsu.201700006/full
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|
dc.identifier.uri |
http://hdl.handle.net/10204/9584
|
|
dc.description |
Advanced Sustainable Systems, vol. 1(7): DOI: 10.1002/adsu.201700006 |
en_US |
dc.description.abstract |
Photocatalytic approaches in the visible region show promising potential in photocatalytic water splitting and water treatment to boost water purification efficiency. For this reason, developing cost-effective and efficient photocatalysts for environmental remediation is a growing need, and semiconductor photocatalysts have now received more interest owing to their excellent activity and stability. Recently, several metal oxides, sulfides, and nitrides-based semiconductors for water splitting and photodegradation of pollutants have been developed. However, the existing challenges, such as high over potential, wide band gap as well as fast recombination of charge carriers of most of the semiconductors limit their photocatalytic properties. This review summarizes the recent state-of-the-art first-principles research progress in the design of effective visible-light-response semiconductor photocatalysts through several modification processes with a focus on density functional theory (DFT) calculations. Recent developments to the exchange-correlation effect, such as hybrid functionals, DFT + U as well as methods beyond DFT are also emphasized. Recent discoveries on the origin, fundamentals, and the underlying mechanisms of the interfacial electron transfer, band gap reduction, enhanced optical absorption, and electron–holes separation are presented. Highlights on the challenges and proposed strategies in developing advanced semiconductor photocatalysts for the application in water splitting and degradation of pollutants are proposed. |
en_US |
dc.language.iso |
en |
en_US |
dc.publisher |
Wiley |
en_US |
dc.relation.ispartofseries |
Worklist;19493 |
|
dc.subject |
Photocatalytic approaches |
en_US |
dc.subject |
Pollutant degradation |
en_US |
dc.subject |
Photocatalytic water splitting |
en_US |
dc.title |
Recent progress in the development of semiconductor-based photocatalyst materials for applications in photocatalytic water splitting and degradation of pollutants |
en_US |
dc.type |
Article |
en_US |
dc.identifier.apacitation |
Opoku, F., Govender, K., Van Sittert, C., & Govender, P. (2017). Recent progress in the development of semiconductor-based photocatalyst materials for applications in photocatalytic water splitting and degradation of pollutants. http://hdl.handle.net/10204/9584 |
en_ZA |
dc.identifier.chicagocitation |
Opoku, F, Krishna Govender, CGCE Van Sittert, and PP Govender "Recent progress in the development of semiconductor-based photocatalyst materials for applications in photocatalytic water splitting and degradation of pollutants." (2017) http://hdl.handle.net/10204/9584 |
en_ZA |
dc.identifier.vancouvercitation |
Opoku F, Govender K, Van Sittert C, Govender P. Recent progress in the development of semiconductor-based photocatalyst materials for applications in photocatalytic water splitting and degradation of pollutants. 2017; http://hdl.handle.net/10204/9584. |
en_ZA |
dc.identifier.ris |
TY - Article
AU - Opoku, F
AU - Govender, Krishna
AU - Van Sittert, CGCE
AU - Govender, PP
AB - Photocatalytic approaches in the visible region show promising potential in photocatalytic water splitting and water treatment to boost water purification efficiency. For this reason, developing cost-effective and efficient photocatalysts for environmental remediation is a growing need, and semiconductor photocatalysts have now received more interest owing to their excellent activity and stability. Recently, several metal oxides, sulfides, and nitrides-based semiconductors for water splitting and photodegradation of pollutants have been developed. However, the existing challenges, such as high over potential, wide band gap as well as fast recombination of charge carriers of most of the semiconductors limit their photocatalytic properties. This review summarizes the recent state-of-the-art first-principles research progress in the design of effective visible-light-response semiconductor photocatalysts through several modification processes with a focus on density functional theory (DFT) calculations. Recent developments to the exchange-correlation effect, such as hybrid functionals, DFT + U as well as methods beyond DFT are also emphasized. Recent discoveries on the origin, fundamentals, and the underlying mechanisms of the interfacial electron transfer, band gap reduction, enhanced optical absorption, and electron–holes separation are presented. Highlights on the challenges and proposed strategies in developing advanced semiconductor photocatalysts for the application in water splitting and degradation of pollutants are proposed.
DA - 2017-07
DB - ResearchSpace
DP - CSIR
KW - Photocatalytic approaches
KW - Pollutant degradation
KW - Photocatalytic water splitting
LK - https://researchspace.csir.co.za
PY - 2017
SM - 2366-7486
T1 - Recent progress in the development of semiconductor-based photocatalyst materials for applications in photocatalytic water splitting and degradation of pollutants
TI - Recent progress in the development of semiconductor-based photocatalyst materials for applications in photocatalytic water splitting and degradation of pollutants
UR - http://hdl.handle.net/10204/9584
ER -
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en_ZA |