Universiti Teknologi Malaysia Institutional Repository

Harvesting visible light for enhanced catalytic degradation of wastewater using TiO2@Fe3O4 embedded on two dimensional reduced graphene oxide nanosheets

Rajendran, Saravanan and Blanco, Adriana and Gnanasekaran, Lalitha and Abdul Jalil, Aishah and Chen, Wei-Hsin and Gracia, Francisco (2023) Harvesting visible light for enhanced catalytic degradation of wastewater using TiO2@Fe3O4 embedded on two dimensional reduced graphene oxide nanosheets. Chemosphere, 345 (NA). NA-NA. ISSN 0045-6535 (In Press)

Full text not available from this repository.

Official URL: http://dx.doi.org/10.1016/j.chemosphere.2023.14041...

Abstract

Carbon-integrated binary metal oxide semiconductors have gained prominence in the last decade as a better material for photocatalytic wastewater treatment technology. In this regard, this research describes the investigation of the binary metal oxide TiO2@Fe3O4 embedded on reduced graphene oxide (rGO) nanosheets synthesized through a combination of sol-gel, chemical precipitation, and Hummer's processes. Besides, the catalyst is applied for the photocatalytic degradation of organic chlorophenol pollutants. The characterized diffraction results showed the peak broadening of the rGO-TiO2@Fe3O4 composite formed with tetragonal and cubic structures having small crystallite sizes. The TEM observation shows an enormous miniature of TiO2@Fe3O4 nanospheres spread on the folded 2D-rGO nanosheets with a large BET surface area. The XPS result holds the mixed phases of Fe3O4 and Fe2O3. Finally, the catalyst demonstrated a low band gap with extended light absorption towards visible light irradiation. The synergistic interactions between Fe3+ and Fe2+ improved the visible light activity due to the incorporation of rGO, and also possessed good recycling capacity. The increased mobility of electrons at the interfaces of TiO2 and Fe3O4 due to the mixing of rGO results in the separation of charge carriers by elevating the photocatalytic degradation efficiency of chlorophenol.

Item Type:Article
Uncontrolled Keywords:2D nanosheets, Binary metal oxides, Reduced graphene oxide, Synergistic effect, Visible light absorption
Subjects:T Technology > TP Chemical technology
Divisions:Chemical and Energy Engineering
ID Code:106222
Deposited By: Widya Wahid
Deposited On:29 Jun 2024 05:05
Last Modified:29 Jun 2024 05:05

Repository Staff Only: item control page