JOURNAL ARTICLE

Efficient photocatalytic degradation of 4‐nitrophenol over graphene modified TiO2

Xing LiuLanhua ZhaoHua LaiSha LiZhengji Yi

Year: 2017 Journal:   Journal of Chemical Technology & Biotechnology Vol: 92 (9)Pages: 2417-2424   Publisher: Wiley

Abstract

Abstract BACKGROUND Photocatalytic degradation of organic compounds, including nitrophenol, is one of the most popular approaches to pollution control and disposal. Graphene‐based nanocomposites have attracted considerable attention in photocatalytic research owing to their excellent electrical, thermal and mechanical properties. In this work, TiO 2 material was modified with graphene by a hydrothermal method, the photocatalytic performance of the prepared catalyst was evaluated by degradation of 4‐nitrophenol, which is a highly toxic, stable and carcinogenic organic pollutant. RESULTS The characterization results showed that the low amount of graphene disperses well over TiO 2 and it does not influence the crystal phase, but makes the specific surface area of graphene/TiO 2 greater than that of TiO 2 . Compared with TiO 2 , graphene/TiO 2 exhibits enhanced photocatalytic activity for the degradation of 4‐nitrophenol under simulated solar irradiation. CONCLUSION The enhanced activity of photo‐degradation could be attributed to the involved graphene being beneficial to charge transportation and separation of photogenerated charge carriers, and providing more surface active sites for degradation reaction of the target pollutant. The present result highlights the important application of graphene as a novel carbon material in treating highly toxic pollutant through photocatalysis technology. © 2017 Society of Chemical Industry

Keywords:
Graphene Photocatalysis Materials science Degradation (telecommunications) Chemical engineering Photodegradation 4-Nitrophenol Pollutant Nanocomposite Carbon fibers Hydrothermal circulation Catalysis Nanotechnology Chemistry Composite material Nanoparticle Organic chemistry Composite number

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40
Cited By
1.12
FWCI (Field Weighted Citation Impact)
44
Refs
0.75
Citation Normalized Percentile
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Citation History

Topics

Advanced Photocatalysis Techniques
Physical Sciences →  Energy →  Renewable Energy, Sustainability and the Environment
Nanomaterials for catalytic reactions
Physical Sciences →  Chemistry →  Organic Chemistry
Graphene and Nanomaterials Applications
Physical Sciences →  Engineering →  Biomedical Engineering
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