4.6 Article

Efficient Photocatalytic Degradation of Gaseous Benzene and Toluene over Novel Hybrid PIL@TiO2/m-GO Composites

Journal

CATALYSTS
Volume 11, Issue 1, Pages -

Publisher

MDPI
DOI: 10.3390/catal11010126

Keywords

photocatalysis; poly ionic liquids; titanium dioxide; graphene oxide; gaseous benzene

Funding

  1. Amirkabir University of technology

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In this study, PIL@TiO2 composites with varying concentrations of polymerized ionic liquid were evaluated for their pollutant degradation activity towards benzene and toluene. The results showed that PIL (low)@TiO2 composite exhibited higher activity than PIL (high)@TiO2 composites, with further enhancement achieved by incorporating graphene oxide (GO) to increase efficiency. The novel hybrid photocatalyst (PIL@TiO2/m-GO) demonstrated excellent performance in degrading benzene (97%) and toluene (97%), with an ultimate bandgap of 2.1 eV.
In this work, the PIL (poly ionic liquid)@TiO2 composite was designed with two polymerized ionic liquid concentrations (low and high) and evaluated for pollutant degradation activity for benzene and toluene. The results showed that PIL (low)@TiO2 composite was more active than PIL (high)@TiO2 composites. The photodegradation rate of benzene and toluene pollutants by PIL (low)@TiO2 and PIL (high)@TiO2 composites was obtained as 86% and 74%, and 59% and 46%, respectively, under optimized conditions. The bandgap of TiO2 was markedly lowered (3.2 eV to 2.2 eV) due to the formation of PIL (low)@TiO2 composite. Besides, graphene oxide (GO) was used to grow the nano-photocatalysts' specific surface area. The as-synthesized PIL (low)@TiO2@GO composite showed higher efficiency for benzene and toluene degradation which corresponds to 91% and 83%, respectively. The resultant novel hybrid photocatalyst (PIL@TiO2/m-GO) was prepared and appropriately characterized for their microstructural, morphology, and catalytic properties. Among the studied photocatalysts, the PIL (low)@TiO2@m-GO composite exhibits the highest activity in the degradation of benzene (97%) and toluene (97%). The ultimate bandgap of the composite reached 2.1 eV. Our results showed that the as-prepared composites hold an essential role for future considerations over organic pollutants.

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